ComplexTestsF32.cpp 9.2 KB

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  1. #include "ComplexTestsF32.h"
  2. #include <stdio.h>
  3. #include "Error.h"
  4. #define SNR_THRESHOLD 120
  5. #define REL_ERROR (2.0e-6)
  6. void ComplexTestsF32::test_cmplx_conj_f32()
  7. {
  8. const float32_t *inp1=input1.ptr();
  9. float32_t *refp=ref.ptr();
  10. float32_t *outp=output.ptr();
  11. arm_cmplx_conj_f32(inp1,outp,input1.nbSamples() >> 1 );
  12. ASSERT_EMPTY_TAIL(output);
  13. ASSERT_SNR(output,ref,(float32_t)SNR_THRESHOLD);
  14. ASSERT_REL_ERROR(output,ref,REL_ERROR);
  15. }
  16. void ComplexTestsF32::test_cmplx_dot_prod_f32()
  17. {
  18. float32_t re,im;
  19. const float32_t *inp1=input1.ptr();
  20. const float32_t *inp2=input2.ptr();
  21. float32_t *refp=ref.ptr();
  22. float32_t *outp=output.ptr();
  23. arm_cmplx_dot_prod_f32(inp1,inp2,input1.nbSamples() >> 1,&re,&im);
  24. outp[0] = re;
  25. outp[1] = im;
  26. ASSERT_SNR(output,ref,(float32_t)SNR_THRESHOLD);
  27. ASSERT_REL_ERROR(output,ref,REL_ERROR);
  28. ASSERT_EMPTY_TAIL(output);
  29. }
  30. void ComplexTestsF32::test_cmplx_mag_f32()
  31. {
  32. const float32_t *inp1=input1.ptr();
  33. float32_t *refp=ref.ptr();
  34. float32_t *outp=output.ptr();
  35. arm_cmplx_mag_f32(inp1,outp,input1.nbSamples() >> 1 );
  36. ASSERT_EMPTY_TAIL(output);
  37. ASSERT_SNR(output,ref,(float32_t)SNR_THRESHOLD);
  38. ASSERT_REL_ERROR(output,ref,REL_ERROR);
  39. }
  40. void ComplexTestsF32::test_cmplx_mag_squared_f32()
  41. {
  42. const float32_t *inp1=input1.ptr();
  43. float32_t *refp=ref.ptr();
  44. float32_t *outp=output.ptr();
  45. arm_cmplx_mag_squared_f32(inp1,outp,input1.nbSamples() >> 1 );
  46. ASSERT_EMPTY_TAIL(output);
  47. ASSERT_SNR(output,ref,(float32_t)SNR_THRESHOLD);
  48. ASSERT_REL_ERROR(output,ref,REL_ERROR);
  49. }
  50. void ComplexTestsF32::test_cmplx_mult_cmplx_f32()
  51. {
  52. const float32_t *inp1=input1.ptr();
  53. const float32_t *inp2=input2.ptr();
  54. float32_t *refp=ref.ptr();
  55. float32_t *outp=output.ptr();
  56. arm_cmplx_mult_cmplx_f32(inp1,inp2,outp,input1.nbSamples() >> 1 );
  57. ASSERT_EMPTY_TAIL(output);
  58. ASSERT_SNR(output,ref,(float32_t)SNR_THRESHOLD);
  59. ASSERT_REL_ERROR(output,ref,REL_ERROR);
  60. }
  61. void ComplexTestsF32::test_cmplx_mult_real_f32()
  62. {
  63. const float32_t *inp1=input1.ptr();
  64. const float32_t *inp2=input2.ptr();
  65. float32_t *refp=ref.ptr();
  66. float32_t *outp=output.ptr();
  67. arm_cmplx_mult_real_f32(inp1,inp2,outp,input1.nbSamples() >> 1 );
  68. ASSERT_EMPTY_TAIL(output);
  69. ASSERT_SNR(output,ref,(float32_t)SNR_THRESHOLD);
  70. ASSERT_REL_ERROR(output,ref,REL_ERROR);
  71. }
  72. void ComplexTestsF32::setUp(Testing::testID_t id,std::vector<Testing::param_t>& params,Client::PatternMgr *mgr)
  73. {
  74. Testing::nbSamples_t nb=MAX_NB_SAMPLES;
  75. switch(id)
  76. {
  77. case ComplexTestsF32::TEST_CMPLX_CONJ_F32_1:
  78. nb = 3;
  79. ref.reload(ComplexTestsF32::REF_CONJ_F32_ID,mgr,nb << 1);
  80. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  81. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  82. break;
  83. case ComplexTestsF32::TEST_CMPLX_CONJ_F32_2:
  84. nb = 8;
  85. ref.reload(ComplexTestsF32::REF_CONJ_F32_ID,mgr,nb << 1);
  86. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  87. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  88. break;
  89. case ComplexTestsF32::TEST_CMPLX_CONJ_F32_3:
  90. nb = 11;
  91. ref.reload(ComplexTestsF32::REF_CONJ_F32_ID,mgr,nb << 1);
  92. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  93. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  94. break;
  95. case ComplexTestsF32::TEST_CMPLX_DOT_PROD_F32_4:
  96. nb = 3;
  97. ref.reload(ComplexTestsF32::REF_DOT_PROD_3_F32_ID,mgr);
  98. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  99. input2.reload(ComplexTestsF32::INPUT2_F32_ID,mgr,nb << 1);
  100. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  101. break;
  102. case ComplexTestsF32::TEST_CMPLX_DOT_PROD_F32_5:
  103. nb = 8;
  104. ref.reload(ComplexTestsF32::REF_DOT_PROD_4N_F32_ID,mgr);
  105. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  106. input2.reload(ComplexTestsF32::INPUT2_F32_ID,mgr,nb << 1);
  107. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  108. break;
  109. case ComplexTestsF32::TEST_CMPLX_DOT_PROD_F32_6:
  110. nb = 11;
  111. ref.reload(ComplexTestsF32::REF_DOT_PROD_4N1_F32_ID,mgr);
  112. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  113. input2.reload(ComplexTestsF32::INPUT2_F32_ID,mgr,nb << 1);
  114. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  115. break;
  116. case ComplexTestsF32::TEST_CMPLX_MAG_F32_7:
  117. nb = 3;
  118. ref.reload(ComplexTestsF32::REF_MAG_F32_ID,mgr,nb);
  119. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  120. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  121. break;
  122. case ComplexTestsF32::TEST_CMPLX_MAG_F32_8:
  123. nb = 8;
  124. ref.reload(ComplexTestsF32::REF_MAG_F32_ID,mgr,nb);
  125. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  126. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  127. break;
  128. case ComplexTestsF32::TEST_CMPLX_MAG_F32_9:
  129. nb = 11;
  130. ref.reload(ComplexTestsF32::REF_MAG_F32_ID,mgr,nb);
  131. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  132. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  133. break;
  134. case ComplexTestsF32::TEST_CMPLX_MAG_SQUARED_F32_10:
  135. nb = 3;
  136. ref.reload(ComplexTestsF32::REF_MAG_SQUARED_F32_ID,mgr,nb);
  137. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  138. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  139. break;
  140. case ComplexTestsF32::TEST_CMPLX_MAG_SQUARED_F32_11:
  141. nb = 8;
  142. ref.reload(ComplexTestsF32::REF_MAG_SQUARED_F32_ID,mgr,nb);
  143. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  144. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  145. break;
  146. case ComplexTestsF32::TEST_CMPLX_MAG_SQUARED_F32_12:
  147. nb = 11;
  148. ref.reload(ComplexTestsF32::REF_MAG_SQUARED_F32_ID,mgr,nb);
  149. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  150. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  151. break;
  152. case ComplexTestsF32::TEST_CMPLX_MULT_CMPLX_F32_13:
  153. nb = 3;
  154. ref.reload(ComplexTestsF32::REF_CMPLX_MULT_CMPLX_F32_ID,mgr,nb << 1);
  155. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  156. input2.reload(ComplexTestsF32::INPUT2_F32_ID,mgr,nb << 1);
  157. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  158. break;
  159. case ComplexTestsF32::TEST_CMPLX_MULT_CMPLX_F32_14:
  160. nb = 8;
  161. ref.reload(ComplexTestsF32::REF_CMPLX_MULT_CMPLX_F32_ID,mgr,nb << 1);
  162. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  163. input2.reload(ComplexTestsF32::INPUT2_F32_ID,mgr,nb << 1);
  164. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  165. break;
  166. case ComplexTestsF32::TEST_CMPLX_MULT_CMPLX_F32_15:
  167. nb = 11;
  168. ref.reload(ComplexTestsF32::REF_CMPLX_MULT_CMPLX_F32_ID,mgr,nb << 1);
  169. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  170. input2.reload(ComplexTestsF32::INPUT2_F32_ID,mgr,nb << 1);
  171. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  172. break;
  173. case ComplexTestsF32::TEST_CMPLX_MULT_REAL_F32_16:
  174. nb = 3;
  175. ref.reload(ComplexTestsF32::REF_CMPLX_MULT_REAL_F32_ID,mgr,nb << 1);
  176. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  177. input2.reload(ComplexTestsF32::INPUT3_F32_ID,mgr,nb);
  178. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  179. break;
  180. case ComplexTestsF32::TEST_CMPLX_MULT_REAL_F32_17:
  181. nb = 8;
  182. ref.reload(ComplexTestsF32::REF_CMPLX_MULT_REAL_F32_ID,mgr,nb << 1);
  183. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  184. input2.reload(ComplexTestsF32::INPUT3_F32_ID,mgr,nb);
  185. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  186. break;
  187. case ComplexTestsF32::TEST_CMPLX_MULT_REAL_F32_18:
  188. nb = 11;
  189. ref.reload(ComplexTestsF32::REF_CMPLX_MULT_REAL_F32_ID,mgr,nb << 1);
  190. input1.reload(ComplexTestsF32::INPUT1_F32_ID,mgr,nb << 1);
  191. input2.reload(ComplexTestsF32::INPUT3_F32_ID,mgr,nb);
  192. output.create(ref.nbSamples(),ComplexTestsF32::OUT_SAMPLES_F32_ID,mgr);
  193. break;
  194. }
  195. }
  196. void ComplexTestsF32::tearDown(Testing::testID_t id,Client::PatternMgr *mgr)
  197. {
  198. output.dump(mgr);
  199. }