idf_size.py 45 KB

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  1. #!/usr/bin/env python
  2. #
  3. # esp-idf alternative to "size" to print ELF file sizes, also analyzes
  4. # the linker map file to dump higher resolution details.
  5. #
  6. # Includes information which is not shown in "xtensa-esp32-elf-size",
  7. # or easy to parse from "xtensa-esp32-elf-objdump" or raw map files.
  8. #
  9. # Copyright 2017-2020 Espressif Systems (Shanghai) PTE LTD
  10. #
  11. # Licensed under the Apache License, Version 2.0 (the "License");
  12. # you may not use this file except in compliance with the License.
  13. # You may obtain a copy of the License at
  14. #
  15. # http://www.apache.org/licenses/LICENSE-2.0
  16. #
  17. # Unless required by applicable law or agreed to in writing, software
  18. # distributed under the License is distributed on an "AS IS" BASIS,
  19. # WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  20. # See the License for the specific language governing permissions and
  21. # limitations under the License.
  22. #
  23. from __future__ import print_function
  24. from __future__ import unicode_literals
  25. from __future__ import division
  26. from future.utils import iteritems
  27. import argparse
  28. import collections
  29. import json
  30. import os.path
  31. import re
  32. import sys
  33. GLOBAL_JSON_INDENT = 4
  34. GLOBAL_JSON_SEPARATORS = (',', ': ')
  35. class MemRegions(object):
  36. (DRAM_ID, IRAM_ID, DIRAM_ID) = range(3)
  37. @staticmethod
  38. def get_mem_regions(target):
  39. # The target specific memory structure is deduced from soc_memory_types defined in
  40. # $IDF_PATH/components/soc/**/soc_memory_layout.c files.
  41. # The order of variables in the tuple is the same as in the soc_memory_layout.c files
  42. MemRegDef = collections.namedtuple('MemRegDef', ['primary_addr', 'length', 'type', 'secondary_addr'])
  43. if target == 'esp32':
  44. return sorted([
  45. # Consecutive MemRegDefs of the same type are joined into one MemRegDef
  46. MemRegDef(0x3FFAE000, 17 * 0x2000 + 4 * 0x8000 + 4 * 0x4000, MemRegions.DRAM_ID, 0),
  47. # MemRegDef(0x3FFAE000, 0x2000, MemRegions.DRAM_ID, 0),
  48. # MemRegDef(0x3FFB0000, 0x8000, MemRegions.DRAM_ID, 0),
  49. # MemRegDef(0x3FFB8000, 0x8000, MemRegions.DRAM_ID, 0),
  50. # MemRegDef(0x3FFC0000, 0x2000, MemRegions.DRAM_ID, 0),
  51. # MemRegDef(0x3FFC2000, 0x2000, MemRegions.DRAM_ID, 0),
  52. # MemRegDef(0x3FFC4000, 0x2000, MemRegions.DRAM_ID, 0),
  53. # MemRegDef(0x3FFC6000, 0x2000, MemRegions.DRAM_ID, 0),
  54. # MemRegDef(0x3FFC8000, 0x2000, MemRegions.DRAM_ID, 0),
  55. # MemRegDef(0x3FFCA000, 0x2000, MemRegions.DRAM_ID, 0),
  56. # MemRegDef(0x3FFCC000, 0x2000, MemRegions.DRAM_ID, 0),
  57. # MemRegDef(0x3FFCE000, 0x2000, MemRegions.DRAM_ID, 0),
  58. # MemRegDef(0x3FFD0000, 0x2000, MemRegions.DRAM_ID, 0),
  59. # MemRegDef(0x3FFD2000, 0x2000, MemRegions.DRAM_ID, 0),
  60. # MemRegDef(0x3FFD4000, 0x2000, MemRegions.DRAM_ID, 0),
  61. # MemRegDef(0x3FFD6000, 0x2000, MemRegions.DRAM_ID, 0),
  62. # MemRegDef(0x3FFD8000, 0x2000, MemRegions.DRAM_ID, 0),
  63. # MemRegDef(0x3FFDA000, 0x2000, MemRegions.DRAM_ID, 0),
  64. # MemRegDef(0x3FFDC000, 0x2000, MemRegions.DRAM_ID, 0),
  65. # MemRegDef(0x3FFDE000, 0x2000, MemRegions.DRAM_ID, 0),
  66. #
  67. # The bootloader is there and it has to been counted as DRAM
  68. # MemRegDef(0x3FFE0000, 0x4000, MemRegions.DIRAM_ID, 0x400BC000),
  69. # MemRegDef(0x3FFE4000, 0x4000, MemRegions.DIRAM_ID, 0x400B8000),
  70. # MemRegDef(0x3FFE8000, 0x8000, MemRegions.DIRAM_ID, 0x400B0000),
  71. # MemRegDef(0x3FFF0000, 0x8000, MemRegions.DIRAM_ID, 0x400A8000),
  72. # MemRegDef(0x3FFF8000, 0x4000, MemRegions.DIRAM_ID, 0x400A4000),
  73. # MemRegDef(0x3FFFC000, 0x4000, MemRegions.DIRAM_ID, 0x400A0000),
  74. #
  75. MemRegDef(0x40070000, 2 * 0x8000 + 16 * 0x2000, MemRegions.IRAM_ID, 0),
  76. # MemRegDef(0x40070000, 0x8000, MemRegions.IRAM_ID, 0),
  77. # MemRegDef(0x40078000, 0x8000, MemRegions.IRAM_ID, 0),
  78. # MemRegDef(0x40080000, 0x2000, MemRegions.IRAM_ID, 0),
  79. # MemRegDef(0x40082000, 0x2000, MemRegions.IRAM_ID, 0),
  80. # MemRegDef(0x40084000, 0x2000, MemRegions.IRAM_ID, 0),
  81. # MemRegDef(0x40086000, 0x2000, MemRegions.IRAM_ID, 0),
  82. # MemRegDef(0x40088000, 0x2000, MemRegions.IRAM_ID, 0),
  83. # MemRegDef(0x4008A000, 0x2000, MemRegions.IRAM_ID, 0),
  84. # MemRegDef(0x4008C000, 0x2000, MemRegions.IRAM_ID, 0),
  85. # MemRegDef(0x4008E000, 0x2000, MemRegions.IRAM_ID, 0),
  86. # MemRegDef(0x40090000, 0x2000, MemRegions.IRAM_ID, 0),
  87. # MemRegDef(0x40092000, 0x2000, MemRegions.IRAM_ID, 0),
  88. # MemRegDef(0x40094000, 0x2000, MemRegions.IRAM_ID, 0),
  89. # MemRegDef(0x40096000, 0x2000, MemRegions.IRAM_ID, 0),
  90. # MemRegDef(0x40098000, 0x2000, MemRegions.IRAM_ID, 0),
  91. # MemRegDef(0x4009A000, 0x2000, MemRegions.IRAM_ID, 0),
  92. # MemRegDef(0x4009C000, 0x2000, MemRegions.IRAM_ID, 0),
  93. # MemRegDef(0x4009E000, 0x2000, MemRegions.IRAM_ID, 0),
  94. ])
  95. elif target == 'esp32s2':
  96. return sorted([
  97. MemRegDef(0x3FFB2000, 3 * 0x2000 + 18 * 0x4000, MemRegions.DIRAM_ID, 0x40022000),
  98. # MemRegDef(0x3FFB2000, 0x2000, MemRegions.DIRAM_ID, 0x40022000),
  99. # MemRegDef(0x3FFB4000, 0x2000, MemRegions.DIRAM_ID, 0x40024000),
  100. # MemRegDef(0x3FFB6000, 0x2000, MemRegions.DIRAM_ID, 0x40026000),
  101. # MemRegDef(0x3FFB8000, 0x4000, MemRegions.DIRAM_ID, 0x40028000),
  102. # MemRegDef(0x3FFBC000, 0x4000, MemRegions.DIRAM_ID, 0x4002C000),
  103. # MemRegDef(0x3FFC0000, 0x4000, MemRegions.DIRAM_ID, 0x40030000),
  104. # MemRegDef(0x3FFC4000, 0x4000, MemRegions.DIRAM_ID, 0x40034000),
  105. # MemRegDef(0x3FFC8000, 0x4000, MemRegions.DIRAM_ID, 0x40038000),
  106. # MemRegDef(0x3FFCC000, 0x4000, MemRegions.DIRAM_ID, 0x4003C000),
  107. # MemRegDef(0x3FFD0000, 0x4000, MemRegions.DIRAM_ID, 0x40040000),
  108. # MemRegDef(0x3FFD4000, 0x4000, MemRegions.DIRAM_ID, 0x40044000),
  109. # MemRegDef(0x3FFD8000, 0x4000, MemRegions.DIRAM_ID, 0x40048000),
  110. # MemRegDef(0x3FFDC000, 0x4000, MemRegions.DIRAM_ID, 0x4004C000),
  111. # MemRegDef(0x3FFE0000, 0x4000, MemRegions.DIRAM_ID, 0x40050000),
  112. #
  113. # MemRegDef(0x3FFE4000, 0x4000, MemRegions.DIRAM_ID, 0x40054000),
  114. # MemRegDef(0x3FFE8000, 0x4000, MemRegions.DIRAM_ID, 0x40058000),
  115. # MemRegDef(0x3FFEC000, 0x4000, MemRegions.DIRAM_ID, 0x4005C000),
  116. # MemRegDef(0x3FFF0000, 0x4000, MemRegions.DIRAM_ID, 0x40060000),
  117. # MemRegDef(0x3FFF4000, 0x4000, MemRegions.DIRAM_ID, 0x40064000),
  118. # MemRegDef(0x3FFF8000, 0x4000, MemRegions.DIRAM_ID, 0x40068000),
  119. # MemRegDef(0x3FFFC000, 0x4000, MemRegions.DIRAM_ID, 0x4006C000),
  120. ])
  121. else:
  122. return None
  123. def __init__(self, target):
  124. self.chip_mem_regions = self.get_mem_regions(target)
  125. if not self.chip_mem_regions:
  126. raise RuntimeError('Target {} is not implemented in idf_size'.format(target))
  127. def _address_in_range(self, address, length, reg_address, reg_length):
  128. return address >= reg_address and (address - reg_address) <= (reg_length - length)
  129. def get_names(self, dictionary, region_id):
  130. def get_address(d):
  131. try:
  132. return d['address']
  133. except KeyError:
  134. return d['origin']
  135. def get_size(d):
  136. try:
  137. return d['size']
  138. except KeyError:
  139. return d['length']
  140. result = set() # using a set will remove possible duplicates and consequent operations with sets are more
  141. # efficient
  142. for m in self.chip_mem_regions:
  143. if m.type != region_id:
  144. continue
  145. # the following code is intentionally not a one-liner for better readability
  146. for (n, c) in iteritems(dictionary):
  147. if (self._address_in_range(get_address(c), get_size(c), m.primary_addr, m.length) or
  148. (m.type == self.DIRAM_ID and
  149. self._address_in_range(get_address(c), get_size(c), m.secondary_addr, m.length))):
  150. result.add(n)
  151. return result
  152. def scan_to_header(f, header_line):
  153. """ Scan forward in a file until you reach 'header_line', then return """
  154. for line in f:
  155. if line.strip() == header_line:
  156. return
  157. raise RuntimeError("Didn't find line '%s' in file" % header_line)
  158. def format_json(json_object):
  159. return json.dumps(json_object,
  160. allow_nan=False,
  161. indent=GLOBAL_JSON_INDENT,
  162. separators=GLOBAL_JSON_SEPARATORS) + os.linesep
  163. def load_map_data(map_file):
  164. memory_config = load_memory_config(map_file)
  165. detected_chip = detect_target_chip(map_file)
  166. sections = load_sections(map_file)
  167. return detected_chip, memory_config, sections
  168. def load_memory_config(map_file):
  169. """ Memory Configuration section is the total size of each output section """
  170. result = {}
  171. scan_to_header(map_file, "Memory Configuration")
  172. RE_MEMORY_SECTION = re.compile(r"(?P<name>[^ ]+) +0x(?P<origin>[\da-f]+) +0x(?P<length>[\da-f]+)")
  173. for line in map_file:
  174. m = RE_MEMORY_SECTION.match(line)
  175. if m is None:
  176. if len(result) == 0:
  177. continue # whitespace or a header, before the content we want
  178. else:
  179. return result # we're at the end of the Memory Configuration
  180. section = {
  181. "name": m.group("name"),
  182. "origin": int(m.group("origin"), 16),
  183. "length": int(m.group("length"), 16),
  184. }
  185. if section["name"] != "*default*":
  186. result[section["name"]] = section
  187. raise RuntimeError("End of file while scanning memory configuration?")
  188. def detect_target_chip(map_file):
  189. ''' Detect target chip based on the xtensa toolchain name in in the linker script part of the MAP file '''
  190. scan_to_header(map_file, 'Linker script and memory map')
  191. RE_TARGET = re.compile(r'^LOAD .*?/xtensa-([^-]+)-elf/')
  192. for line in map_file:
  193. m = RE_TARGET.search(line)
  194. if m:
  195. return m.group(1)
  196. line = line.strip()
  197. # There could be empty line(s) between the "Linker script and memory map" header and "LOAD lines". Therefore,
  198. # line stripping and length is checked as well. The "LOAD lines" are between START GROUP and END GROUP for
  199. # older MAP files.
  200. if not line.startswith(('LOAD', 'START GROUP')) and len(line) > 0:
  201. # This break is a failsafe to not process anything load_sections() might want to analyze.
  202. break
  203. return None
  204. def load_sections(map_file):
  205. """ Load section size information from the MAP file.
  206. Returns a dict of 'sections', where each key is a section name and the value
  207. is a dict with details about this section, including a "sources" key which holds a list of source file line
  208. information for each symbol linked into the section.
  209. """
  210. # output section header, ie '.iram0.text 0x0000000040080400 0x129a5'
  211. RE_SECTION_HEADER = re.compile(r"(?P<name>[^ ]+) +0x(?P<address>[\da-f]+) +0x(?P<size>[\da-f]+)$")
  212. # source file line, ie
  213. # 0x0000000040080400 0xa4 /home/gus/esp/32/idf/examples/get-started/hello_world/build/esp32/libesp32.a(cpu_start.o)
  214. # cmake build system links some object files directly, not part of any archive, so make that part optional
  215. # .xtensa.info 0x0000000000000000 0x38 CMakeFiles/hello-world.elf.dir/project_elf_src.c.obj
  216. RE_SOURCE_LINE = re.compile(r"\s*(?P<sym_name>\S*) +0x(?P<address>[\da-f]+) +0x(?P<size>[\da-f]+) (?P<archive>.+\.a)?\(?(?P<object_file>.+\.(o|obj))\)?")
  217. # Fast check to see if line is a potential source line before running the slower full regex against it
  218. RE_PRE_FILTER = re.compile(r".*\.(o|obj)\)?")
  219. # Check for lines which only contain the sym name (and rest is on following lines)
  220. RE_SYMBOL_ONLY_LINE = re.compile(r"^ (?P<sym_name>\S*)$")
  221. sections = {}
  222. section = None
  223. sym_backup = None
  224. for line in map_file:
  225. if line.strip() == "Cross Reference Table":
  226. # stop processing lines because we are at the next section in the map file
  227. break
  228. m = RE_SECTION_HEADER.match(line)
  229. if m is not None: # start of a new section
  230. section = {
  231. "name": m.group("name"),
  232. "address": int(m.group("address"), 16),
  233. "size": int(m.group("size"), 16),
  234. "sources": [],
  235. }
  236. sections[section["name"]] = section
  237. continue
  238. if section is not None:
  239. m = RE_SYMBOL_ONLY_LINE.match(line)
  240. if m is not None:
  241. # In some cases the section name appears on the previous line, back it up in here
  242. sym_backup = m.group("sym_name")
  243. continue
  244. if not RE_PRE_FILTER.match(line):
  245. # line does not match our quick check, so skip to next line
  246. continue
  247. m = RE_SOURCE_LINE.match(line)
  248. if m is not None: # input source file details=ma,e
  249. sym_name = m.group("sym_name") if len(m.group("sym_name")) > 0 else sym_backup
  250. archive = m.group("archive")
  251. if archive is None:
  252. # optional named group "archive" was not matched, so assign a value to it
  253. archive = "(exe)"
  254. source = {
  255. "size": int(m.group("size"), 16),
  256. "address": int(m.group("address"), 16),
  257. "archive": os.path.basename(archive),
  258. "object_file": os.path.basename(m.group("object_file")),
  259. "sym_name": sym_name,
  260. }
  261. source["file"] = "%s:%s" % (source["archive"], source["object_file"])
  262. section["sources"] += [source]
  263. return sections
  264. class MemRegNames(object):
  265. @staticmethod
  266. def get(mem_regions, memory_config, sections):
  267. mreg = MemRegNames()
  268. mreg.iram_names = mem_regions.get_names(memory_config, MemRegions.IRAM_ID)
  269. mreg.dram_names = mem_regions.get_names(memory_config, MemRegions.DRAM_ID)
  270. mreg.diram_names = mem_regions.get_names(memory_config, MemRegions.DIRAM_ID)
  271. mreg.used_iram_names = mem_regions.get_names(sections, MemRegions.IRAM_ID)
  272. mreg.used_dram_names = mem_regions.get_names(sections, MemRegions.DRAM_ID)
  273. mreg.used_diram_names = mem_regions.get_names(sections, MemRegions.DIRAM_ID)
  274. return mreg
  275. def main():
  276. parser = argparse.ArgumentParser(description="idf_size - a tool to print size information from an IDF MAP file")
  277. parser.add_argument(
  278. '--json',
  279. help="Output results as JSON",
  280. action="store_true")
  281. parser.add_argument(
  282. 'map_file', help='MAP file produced by linker',
  283. type=argparse.FileType('r'))
  284. parser.add_argument(
  285. '--archives', help='Print per-archive sizes', action='store_true')
  286. parser.add_argument(
  287. '--archive_details', help='Print detailed symbols per archive')
  288. parser.add_argument(
  289. '--files', help='Print per-file sizes', action='store_true')
  290. parser.add_argument(
  291. '--target', help='Set target chip', default=None)
  292. parser.add_argument(
  293. '--diff', help='Show the differences in comparison with another MAP file',
  294. metavar='ANOTHER_MAP_FILE',
  295. default=None,
  296. dest='another_map_file')
  297. parser.add_argument(
  298. '-o',
  299. '--output-file',
  300. type=argparse.FileType('w'),
  301. default=sys.stdout,
  302. help="Print output to the specified file instead of stdout")
  303. args = parser.parse_args()
  304. detected_target, memory_config, sections = load_map_data(args.map_file)
  305. args.map_file.close()
  306. def check_target(target, map_file):
  307. if target is None:
  308. raise RuntimeError('The target chip cannot be detected for {}. '
  309. 'Please report the issue.'.format(map_file.name))
  310. check_target(detected_target, args.map_file)
  311. if args.target is not None:
  312. if args.target != detected_target:
  313. print('WARNING: The detected chip target is {} but command line argument overwrites it to '
  314. '{}!'.format(detected_target, args.target))
  315. detected_target = args.target
  316. if args.another_map_file:
  317. with open(args.another_map_file, 'r') as f:
  318. detected_target_diff, memory_config_diff, sections_diff = load_map_data(f)
  319. check_target(detected_target_diff, f)
  320. if detected_target_diff != detected_target:
  321. print('WARNING: The target of the reference and other MAP files is {} and {}, respectively.'
  322. ''.format(detected_target, detected_target_diff))
  323. else:
  324. memory_config_diff, sections_diff = None, None
  325. mem_regions = MemRegions(detected_target)
  326. mem_reg = MemRegNames.get(mem_regions, memory_config, sections)
  327. mem_reg_diff = MemRegNames.get(mem_regions, memory_config_diff, sections_diff) if args.another_map_file else None
  328. output = ''
  329. if not args.json or not (args.archives or args.files or args.archive_details):
  330. output += get_summary(args.map_file.name, mem_reg, memory_config, sections,
  331. args.json,
  332. args.another_map_file, mem_reg_diff, memory_config_diff, sections_diff)
  333. if args.archives:
  334. output += get_detailed_sizes(mem_reg, sections, "archive", "Archive File", args.json, sections_diff)
  335. if args.files:
  336. output += get_detailed_sizes(mem_reg, sections, "file", "Object File", args.json, sections_diff)
  337. if args.archive_details:
  338. output += get_archive_symbols(mem_reg, sections, args.archive_details, args.json, sections_diff)
  339. args.output_file.write(output)
  340. args.output_file.close()
  341. class StructureForSummary(object):
  342. (dram_data_names, dram_bss_names, dram_other_names,
  343. diram_data_names, diram_bss_names) = (frozenset(), ) * 5
  344. (total_iram, total_dram, total_dram, total_diram,
  345. used_dram_data, used_dram_bss, used_dram_other,
  346. used_dram, used_dram_ratio,
  347. used_iram, used_iram_ratio,
  348. used_diram_data, used_diram_bss,
  349. used_diram, used_diram_ratio,
  350. flash_code, flash_rodata,
  351. total_size) = (0, ) * 18
  352. @staticmethod
  353. def get(reg, mem_conf, sects):
  354. def _get_size(sects, section):
  355. try:
  356. return sects[section]['size']
  357. except KeyError:
  358. return 0
  359. r = StructureForSummary()
  360. r.dram_data_names = frozenset([n for n in reg.used_dram_names if n.endswith('.data')])
  361. r.dram_bss_names = frozenset([n for n in reg.used_dram_names if n.endswith('.bss')])
  362. r.dram_other_names = reg.used_dram_names - r.dram_data_names - r.dram_bss_names
  363. r.diram_data_names = frozenset([n for n in reg.used_diram_names if n.endswith('.data')])
  364. r.diram_bss_names = frozenset([n for n in reg.used_diram_names if n.endswith('.bss')])
  365. r.total_iram = sum(mem_conf[n]['length'] for n in reg.iram_names)
  366. r.total_dram = sum(mem_conf[n]['length'] for n in reg.dram_names)
  367. r.total_diram = sum(mem_conf[n]['length'] for n in reg.diram_names)
  368. r.used_dram_data = sum(_get_size(sects, n) for n in r.dram_data_names)
  369. r.used_dram_bss = sum(_get_size(sects, n) for n in r.dram_bss_names)
  370. r.used_dram_other = sum(_get_size(sects, n) for n in r.dram_other_names)
  371. r.used_dram = r.used_dram_data + r.used_dram_bss + r.used_dram_other
  372. try:
  373. r.used_dram_ratio = r.used_dram / r.total_dram
  374. except ZeroDivisionError:
  375. r.used_dram_ratio = float('nan')
  376. r.used_iram = sum(_get_size(sects, s) for s in sects if s in reg.used_iram_names)
  377. try:
  378. r.used_iram_ratio = r.used_iram / r.total_iram
  379. except ZeroDivisionError:
  380. r.used_iram_ratio = float('nan')
  381. r.used_diram_data = sum(_get_size(sects, n) for n in r.diram_data_names)
  382. r.used_diram_bss = sum(_get_size(sects, n) for n in r.diram_bss_names)
  383. r.used_diram = sum(_get_size(sects, n) for n in reg.used_diram_names)
  384. try:
  385. r.used_diram_ratio = r.used_diram / r.total_diram
  386. except ZeroDivisionError:
  387. r.used_diram_ratio = float('nan')
  388. r.flash_code = _get_size(sects, '.flash.text')
  389. r.flash_rodata = _get_size(sects, '.flash.rodata')
  390. r.total_size = r.used_dram + r.used_iram + r.used_diram + r.flash_code + r.flash_rodata
  391. return r
  392. def get_json_dic(self):
  393. return collections.OrderedDict([
  394. ('dram_data', self.used_dram_data + self.used_diram_data),
  395. ('dram_bss', self.used_dram_bss + self.used_diram_bss),
  396. ('dram_other', self.used_dram_other),
  397. ('used_dram', self.used_dram),
  398. ('available_dram', self.total_dram - self.used_dram),
  399. ('used_dram_ratio', self.used_dram_ratio if self.total_dram != 0 else 0),
  400. ('used_iram', self.used_iram),
  401. ('available_iram', self.total_iram - self.used_iram),
  402. ('used_iram_ratio', self.used_iram_ratio if self.total_iram != 0 else 0),
  403. ('used_diram', self.used_diram),
  404. ('available_diram', self.total_diram - self.used_diram),
  405. ('used_diram_ratio', self.used_diram_ratio if self.total_diram != 0 else 0),
  406. ('flash_code', self.flash_code),
  407. ('flash_rodata', self.flash_rodata),
  408. ('total_size', self.total_size)
  409. ])
  410. def get_summary(path, mem_reg, memory_config, sections,
  411. as_json=False,
  412. path_diff=None, mem_reg_diff=None, memory_config_diff=None, sections_diff=None):
  413. diff_en = mem_reg_diff and memory_config_diff and sections_diff
  414. current = StructureForSummary.get(mem_reg, memory_config, sections)
  415. reference = StructureForSummary.get(mem_reg_diff,
  416. memory_config_diff,
  417. sections_diff) if diff_en else StructureForSummary()
  418. if as_json:
  419. current_json_dic = current.get_json_dic()
  420. if diff_en:
  421. reference_json_dic = reference.get_json_dic()
  422. diff_json_dic = collections.OrderedDict([(k,
  423. v - reference_json_dic[k]) for k, v in iteritems(current_json_dic)])
  424. output = format_json(collections.OrderedDict([('current', current_json_dic),
  425. ('reference', reference_json_dic),
  426. ('diff', diff_json_dic),
  427. ]))
  428. else:
  429. output = format_json(current_json_dic)
  430. else:
  431. rows = []
  432. if diff_en:
  433. rows += [('<CURRENT> MAP file: {}'.format(path), '', '', '')]
  434. rows += [('<REFERENCE> MAP file: {}'.format(path_diff), '', '', '')]
  435. rows += [('Difference is counted as <CURRENT> - <REFERENCE>, '
  436. 'i.e. a positive number means that <CURRENT> is larger.',
  437. '', '', '')]
  438. rows += [('Total sizes{}:'.format(' of <CURRENT>' if diff_en else ''), '<REFERENCE>', 'Difference', '')]
  439. rows += [(' DRAM .data size: {f_dram_data:>7} bytes', '{f_dram_data_2:>7}', '{f_dram_data_diff:+}', '')]
  440. rows += [(' DRAM .bss size: {f_dram_bss:>7} bytes', '{f_dram_bss_2:>7}', '{f_dram_bss_diff:+}', '')]
  441. if current.used_dram_other > 0 or reference.used_dram_other > 0:
  442. diff_list = ['+{}'.format(x) for x in current.dram_other_names - reference.dram_other_names]
  443. diff_list += ['-{}'.format(x) for x in reference.dram_other_names - current.dram_other_names]
  444. other_diff_str = '' if len(diff_list) == 0 else '({})'.format(', '.join(sorted(diff_list)))
  445. rows += [(' DRAM other size: {f_dram_other:>7} bytes ' + '({})'.format(', '.join(current.dram_other_names)),
  446. '{f_dram_other_2:>7}',
  447. '{f_dram_other_diff:+}',
  448. other_diff_str)]
  449. rows += [('Used static DRAM: {f_used_dram:>7} bytes ({f_dram_avail:>7} available, '
  450. '{f_used_dram_ratio:.1%} used)',
  451. '{f_used_dram_2:>7}',
  452. '{f_used_dram_diff:+}',
  453. '({f_dram_avail_diff:>+7} available, {f_dram_total_diff:>+7} total)')]
  454. rows += [('Used static IRAM: {f_used_iram:>7} bytes ({f_iram_avail:>7} available, '
  455. '{f_used_iram_ratio:.1%} used)',
  456. '{f_used_iram_2:>7}',
  457. '{f_used_iram_diff:+}',
  458. '({f_iram_avail_diff:>+7} available, {f_iram_total_diff:>+7} total)')]
  459. if current.total_diram > 0 or reference.total_diram > 0:
  460. rows += [('Used stat D/IRAM: {f_used_diram:>7} bytes ({f_diram_avail:>7} available, '
  461. '{f_used_diram_ratio:.1%} used)',
  462. '{f_used_diram_2:>7}',
  463. '{f_used_diram_diff:+}',
  464. '({f_diram_avail_diff:>+7} available, {f_diram_total_diff:>+7} total)')]
  465. rows += [(' Flash code: {f_flash_code:>7} bytes',
  466. '{f_flash_code_2:>7}',
  467. '{f_flash_code_diff:+}',
  468. '')]
  469. rows += [(' Flash rodata: {f_flash_rodata:>7} bytes',
  470. '{f_flash_rodata_2:>7}',
  471. '{f_flash_rodata_diff:+}',
  472. '')]
  473. rows += [('Total image size:~{f_total_size:>7} bytes (.bin may be padded larger)',
  474. '{f_total_size_2:>7}',
  475. '{f_total_size_diff:+}',
  476. '')]
  477. f_dic = {'f_dram_data': current.used_dram_data + current.used_diram_data,
  478. 'f_dram_bss': current.used_dram_bss + current.used_diram_bss,
  479. 'f_dram_other': current.used_dram_other,
  480. 'f_used_dram': current.used_dram,
  481. 'f_dram_avail': current.total_dram - current.used_dram,
  482. 'f_used_dram_ratio': current.used_dram_ratio,
  483. 'f_used_iram': current.used_iram,
  484. 'f_iram_avail': current.total_iram - current.used_iram,
  485. 'f_used_iram_ratio': current.used_iram_ratio,
  486. 'f_used_diram': current.used_diram,
  487. 'f_diram_avail': current.total_diram - current.used_diram,
  488. 'f_used_diram_ratio': current.used_diram_ratio,
  489. 'f_flash_code': current.flash_code,
  490. 'f_flash_rodata': current.flash_rodata,
  491. 'f_total_size': current.total_size,
  492. 'f_dram_data_2': reference.used_dram_data + reference.used_diram_data,
  493. 'f_dram_bss_2': reference.used_dram_bss + reference.used_diram_bss,
  494. 'f_dram_other_2': reference.used_dram_other,
  495. 'f_used_dram_2': reference.used_dram,
  496. 'f_used_iram_2': reference.used_iram,
  497. 'f_used_diram_2': reference.used_diram,
  498. 'f_flash_code_2': reference.flash_code,
  499. 'f_flash_rodata_2': reference.flash_rodata,
  500. 'f_total_size_2': reference.total_size,
  501. 'f_dram_total_diff': current.total_dram - reference.total_dram,
  502. 'f_iram_total_diff': current.total_iram - reference.total_iram,
  503. 'f_diram_total_diff': current.total_diram - reference.total_diram,
  504. 'f_dram_data_diff': current.used_dram_data + current.used_diram_data - (reference.used_dram_data +
  505. reference.used_diram_data),
  506. 'f_dram_bss_diff': current.used_dram_bss + current.used_diram_bss - (reference.used_dram_bss +
  507. reference.used_diram_bss),
  508. 'f_dram_other_diff': current.used_dram_other - reference.used_dram_other,
  509. 'f_used_dram_diff': current.used_dram - reference.used_dram,
  510. 'f_dram_avail_diff': current.total_dram - current.used_dram - (reference.total_dram -
  511. reference.used_dram),
  512. 'f_used_iram_diff': current.used_iram - reference.used_iram,
  513. 'f_iram_avail_diff': current.total_iram - current.used_iram - (reference.total_iram -
  514. reference.used_iram),
  515. 'f_used_diram_diff': current.used_diram - reference.used_diram,
  516. 'f_diram_avail_diff': current.total_diram - current.used_diram - (reference.total_diram -
  517. reference.used_diram),
  518. 'f_flash_code_diff': current.flash_code - reference.flash_code,
  519. 'f_flash_rodata_diff': current.flash_rodata - reference.flash_rodata,
  520. 'f_total_size_diff': current.total_size - reference.total_size,
  521. }
  522. lf = '{:70}{:>15}{:>15} {}'
  523. output = os.linesep.join([lf.format(a.format(**f_dic),
  524. b.format(**f_dic) if diff_en else '',
  525. c.format(**f_dic) if (diff_en and
  526. not c.format(**f_dic).startswith('+0')) else '',
  527. d.format(**f_dic) if diff_en else ''
  528. ).rstrip() for a, b, c, d in rows])
  529. output += os.linesep # last line need to be terminated because it won't be printed otherwise
  530. return output
  531. class StructureForDetailedSizes(object):
  532. @staticmethod
  533. def sizes_by_key(sections, key):
  534. """ Takes a dict of sections (from load_sections) and returns
  535. a dict keyed by 'key' with aggregate output size information.
  536. Key can be either "archive" (for per-archive data) or "file" (for per-file data) in the result.
  537. """
  538. result = {}
  539. for _, section in iteritems(sections):
  540. for s in section["sources"]:
  541. if not s[key] in result:
  542. result[s[key]] = {}
  543. archive = result[s[key]]
  544. if not section["name"] in archive:
  545. archive[section["name"]] = 0
  546. archive[section["name"]] += s["size"]
  547. return result
  548. @staticmethod
  549. def get(mem_reg, sections, key):
  550. sizes = StructureForDetailedSizes.sizes_by_key(sections, key)
  551. # these sets are also computed in get_summary() but they are small ones so it should not matter
  552. dram_data_names = frozenset([n for n in mem_reg.used_dram_names if n.endswith('.data')])
  553. dram_bss_names = frozenset([n for n in mem_reg.used_dram_names if n.endswith('.bss')])
  554. dram_other_names = mem_reg.used_dram_names - dram_data_names - dram_bss_names
  555. diram_data_names = frozenset([n for n in mem_reg.used_diram_names if n.endswith('.data')])
  556. diram_bss_names = frozenset([n for n in mem_reg.used_diram_names if n.endswith('.bss')])
  557. s = []
  558. for k, v in iteritems(sizes):
  559. r = [('data', sum(v.get(n, 0) for n in dram_data_names | diram_data_names)),
  560. ('bss', sum(v.get(n, 0) for n in dram_bss_names | diram_bss_names)),
  561. ('other', sum(v.get(n, 0) for n in dram_other_names)),
  562. ('iram', sum(t for (s,t) in iteritems(v) if s in mem_reg.used_iram_names)),
  563. ('diram', sum(t for (s,t) in iteritems(v) if s in mem_reg.used_diram_names)),
  564. ('flash_text', v.get('.flash.text', 0)),
  565. ('flash_rodata', v.get('.flash.rodata', 0))]
  566. r.append(('total', sum([value for _, value in r])))
  567. s.append((k, collections.OrderedDict(r)))
  568. s = sorted(s, key=lambda elem: elem[0])
  569. # do a secondary sort in order to have consistent order (for diff-ing the output)
  570. s = sorted(s, key=lambda elem: elem[1]['total'], reverse=True)
  571. return collections.OrderedDict(s)
  572. def get_detailed_sizes(mem_reg, sections, key, header, as_json=False, sections_diff=None):
  573. diff_en = sections_diff is not None
  574. current = StructureForDetailedSizes.get(mem_reg, sections, key)
  575. reference = StructureForDetailedSizes.get(mem_reg, sections_diff, key) if diff_en else {}
  576. if as_json:
  577. if diff_en:
  578. diff_json_dic = collections.OrderedDict()
  579. for name in sorted(list(frozenset(current.keys()) | frozenset(reference.keys()))):
  580. cur_name_dic = current.get(name, {})
  581. ref_name_dic = reference.get(name, {})
  582. all_keys = sorted(list(frozenset(cur_name_dic.keys()) | frozenset(ref_name_dic.keys())))
  583. diff_json_dic[name] = collections.OrderedDict([(k,
  584. cur_name_dic.get(k, 0) -
  585. ref_name_dic.get(k, 0)) for k in all_keys])
  586. output = format_json(collections.OrderedDict([('current', current),
  587. ('reference', reference),
  588. ('diff', diff_json_dic),
  589. ]))
  590. else:
  591. output = format_json(current)
  592. else:
  593. def _get_output(data, selection):
  594. header_format = '{:>24} {:>10} {:>6} {:>7} {:>6} {:>8} {:>10} {:>8} {:>7}' + os.linesep
  595. output = header_format.format(header,
  596. 'DRAM .data',
  597. '& .bss',
  598. '& other',
  599. 'IRAM',
  600. 'D/IRAM',
  601. 'Flash code',
  602. '& rodata',
  603. 'Total')
  604. for k, v in iteritems(data):
  605. if k not in selection:
  606. continue
  607. try:
  608. _, k = k.split(':', 1)
  609. # print subheadings for key of format archive:file
  610. except ValueError:
  611. # k remains the same
  612. pass
  613. output += header_format.format(k[:24],
  614. v['data'],
  615. v['bss'],
  616. v['other'],
  617. v['iram'],
  618. v['diram'],
  619. v['flash_text'],
  620. v['flash_rodata'],
  621. v['total'],
  622. )
  623. return output
  624. def _get_output_diff(curr, ref):
  625. header_format = '{:>24}' + ' {:>23}' * 8
  626. output = header_format.format(header,
  627. 'DRAM .data',
  628. 'DRAM .bss',
  629. 'DRAM other',
  630. 'IRAM',
  631. 'D/IRAM',
  632. 'Flash code',
  633. 'Flash rodata',
  634. 'Total') + os.linesep
  635. f_print = ('-' * 23, '') * 4
  636. header_line = header_format.format('', *f_print).rstrip() + os.linesep
  637. header_format = '{:>24}' + '|{:>7}|{:>7}|{:>7}' * 8
  638. f_print = ('<C>', '<R>', '<C>-<R>') * 8
  639. output += header_format.format('', *f_print) + os.linesep
  640. output += header_line
  641. for k, v in iteritems(curr):
  642. try:
  643. v2 = ref[k]
  644. except KeyError:
  645. continue
  646. try:
  647. _, k = k.split(':', 1)
  648. # print subheadings for key of format archive:file
  649. except ValueError:
  650. # k remains the same
  651. pass
  652. def _get_items(name):
  653. a = v[name]
  654. b = v2[name]
  655. diff = a - b
  656. # the sign is added here and not in header_format in order to be able to print empty strings
  657. return (a or '', b or '', '' if diff == 0 else '{:+}'.format(diff))
  658. v_data, v2_data, diff_data = _get_items('data')
  659. v_bss, v2_bss, diff_bss = _get_items('bss')
  660. v_other, v2_other, diff_other = _get_items('other')
  661. v_iram, v2_iram, diff_iram = _get_items('iram')
  662. v_diram, v2_diram, diff_diram = _get_items('diram')
  663. v_flash_text, v2_flash_text, diff_flash_text = _get_items('flash_text')
  664. v_flash_rodata, v2_flash_rodata, diff_flash_rodata = _get_items('flash_rodata')
  665. v_total, v2_total, diff_total = _get_items('total')
  666. output += header_format.format(k[:24],
  667. v_data, v2_data, diff_data,
  668. v_bss, v2_bss, diff_bss,
  669. v_other, v2_other, diff_other,
  670. v_iram, v2_iram, diff_iram,
  671. v_diram, v2_diram, diff_diram,
  672. v_flash_text, v2_flash_text, diff_flash_text,
  673. v_flash_rodata, v2_flash_rodata, diff_flash_rodata,
  674. v_total, v2_total, diff_total,
  675. ).rstrip() + os.linesep
  676. return output
  677. output = 'Per-{} contributions to ELF file:{}'.format(key, os.linesep)
  678. if diff_en:
  679. output += _get_output_diff(current, reference)
  680. in_current = frozenset(current.keys())
  681. in_reference = frozenset(reference.keys())
  682. only_in_current = in_current - in_reference
  683. only_in_reference = in_reference - in_current
  684. if len(only_in_current) > 0:
  685. output += 'The following entries are present in <CURRENT> only:{}'.format(os.linesep)
  686. output += _get_output(current, only_in_current)
  687. if len(only_in_reference) > 0:
  688. output += 'The following entries are present in <REFERENCE> only:{}'.format(os.linesep)
  689. output += _get_output(reference, only_in_reference)
  690. else:
  691. output += _get_output(current, current)
  692. return output
  693. class StructureForArchiveSymbols(object):
  694. @staticmethod
  695. def get(mem_reg, archive, sections):
  696. interested_sections = mem_reg.used_dram_names | mem_reg.used_iram_names | mem_reg.used_diram_names
  697. interested_sections |= frozenset(['.flash.text', '.flash.rodata'])
  698. result = dict([(t, {}) for t in interested_sections])
  699. for _, section in iteritems(sections):
  700. section_name = section['name']
  701. if section_name not in interested_sections:
  702. continue
  703. for s in section['sources']:
  704. if archive != s['archive']:
  705. continue
  706. s['sym_name'] = re.sub('(.text.|.literal.|.data.|.bss.|.rodata.)', '', s['sym_name'])
  707. result[section_name][s['sym_name']] = result[section_name].get(s['sym_name'], 0) + s['size']
  708. # build a new ordered dict of each section, where each entry is an ordereddict of symbols to sizes
  709. section_symbols = collections.OrderedDict()
  710. for t in sorted(list(interested_sections)):
  711. s = sorted(list(result[t].items()), key=lambda k_v: k_v[0])
  712. # do a secondary sort in order to have consistent order (for diff-ing the output)
  713. s = sorted(s, key=lambda k_v: k_v[1], reverse=True)
  714. section_symbols[t] = collections.OrderedDict(s)
  715. return section_symbols
  716. def get_archive_symbols(mem_reg, sections, archive, as_json=False, sections_diff=None):
  717. diff_en = sections_diff is not None
  718. current = StructureForArchiveSymbols.get(mem_reg, archive, sections)
  719. reference = StructureForArchiveSymbols.get(mem_reg, archive, sections_diff) if diff_en else {}
  720. if as_json:
  721. if diff_en:
  722. diff_json_dic = collections.OrderedDict()
  723. for name in sorted(list(frozenset(current.keys()) | frozenset(reference.keys()))):
  724. cur_name_dic = current.get(name, {})
  725. ref_name_dic = reference.get(name, {})
  726. all_keys = sorted(list(frozenset(cur_name_dic.keys()) | frozenset(ref_name_dic.keys())))
  727. diff_json_dic[name] = collections.OrderedDict([(key,
  728. cur_name_dic.get(key, 0) -
  729. ref_name_dic.get(key, 0)) for key in all_keys])
  730. output = format_json(collections.OrderedDict([('current', current),
  731. ('reference', reference),
  732. ('diff', diff_json_dic),
  733. ]))
  734. else:
  735. output = format_json(current)
  736. else:
  737. def _get_item_pairs(name, section):
  738. return collections.OrderedDict([(key.replace(name + '.', ''), val) for key, val in iteritems(section)])
  739. def _get_output(section_symbols):
  740. output = ''
  741. for t, s in iteritems(section_symbols):
  742. output += '{}Symbols from section: {}{}'.format(os.linesep, t, os.linesep)
  743. item_pairs = _get_item_pairs(t, s)
  744. output += ' '.join(['{}({})'.format(key, val) for key, val in iteritems(item_pairs)])
  745. section_total = sum([val for _, val in iteritems(item_pairs)])
  746. output += '{}Section total: {}{}'.format(os.linesep if section_total > 0 else '',
  747. section_total,
  748. os.linesep)
  749. return output
  750. output = 'Symbols within the archive: {} (Not all symbols may be reported){}'.format(archive, os.linesep)
  751. if diff_en:
  752. def _generate_line_tuple(curr, ref, name):
  753. cur_val = curr.get(name, 0)
  754. ref_val = ref.get(name, 0)
  755. diff_val = cur_val - ref_val
  756. # string slicing is used just to make sure it will fit into the first column of line_format
  757. return ((' ' * 4 + name)[:40], cur_val, ref_val, '' if diff_val == 0 else '{:+}'.format(diff_val))
  758. line_format = '{:40} {:>12} {:>12} {:>25}'
  759. all_section_names = sorted(list(frozenset(current.keys()) | frozenset(reference.keys())))
  760. for section_name in all_section_names:
  761. current_item_pairs = _get_item_pairs(section_name, current.get(section_name, {}))
  762. reference_item_pairs = _get_item_pairs(section_name, reference.get(section_name, {}))
  763. output += os.linesep + line_format.format(section_name[:40],
  764. '<CURRENT>',
  765. '<REFERENCE>',
  766. '<CURRENT> - <REFERENCE>') + os.linesep
  767. current_section_total = sum([val for _, val in iteritems(current_item_pairs)])
  768. reference_section_total = sum([val for _, val in iteritems(reference_item_pairs)])
  769. diff_section_total = current_section_total - reference_section_total
  770. all_item_names = sorted(list(frozenset(current_item_pairs.keys()) |
  771. frozenset(reference_item_pairs.keys())))
  772. output += os.linesep.join([line_format.format(*_generate_line_tuple(current_item_pairs,
  773. reference_item_pairs,
  774. n)
  775. ).rstrip() for n in all_item_names])
  776. output += os.linesep if current_section_total > 0 or reference_section_total > 0 else ''
  777. output += line_format.format('Section total:',
  778. current_section_total,
  779. reference_section_total,
  780. '' if diff_section_total == 0 else '{:+}'.format(diff_section_total)
  781. ).rstrip() + os.linesep
  782. else:
  783. output += _get_output(current)
  784. return output
  785. if __name__ == '__main__':
  786. main()