{"id":7597,"date":"2022-04-09T12:33:08","date_gmt":"2022-04-09T07:03:08","guid":{"rendered":"https:\/\/www.goseeko.com\/blog\/?p=7597"},"modified":"2025-10-24T20:08:00","modified_gmt":"2025-10-24T14:38:00","slug":"what-is-chinese-remainder-theorem","status":"publish","type":"post","link":"https:\/\/www.goseeko.com\/blog\/what-is-chinese-remainder-theorem\/","title":{"rendered":"What is Chinese remainder theorem?"},"content":{"rendered":"\n<p><strong>Chinese remainder theorem<\/strong>&#8211; Once a Chinese riddle asks the following question- Is there a positive integer x such that when x is divided by 3 it yields a remainder 2, when x is divided by 5 it yields a remainder 4, and when x is divided by 7 it yields a remainder 6?<\/p>\n\n\n\n<p>In other words, we seek a common solution of the following three congruence equations:<\/p>\n\n\n\n<p>x \u2261 2 (mod 3), x \u2261 4 (mod 5), x \u2261 6 (mod 7)<\/p>\n\n\n\n<h2 class=\"wp-block-heading\"><strong>Theorem (Chinese remainder theorem)<\/strong><\/h2>\n\n\n\n<p>Consider the system<\/p>\n\n\n\n<figure class=\"wp-block-image\"><img decoding=\"async\" src=\"https:\/\/lh6.googleusercontent.com\/mwPnRAXzXrgQczrD9nHtmp8n2E5l2GQjt4d_oOtma-KuCln6qGN-mFx_rXMMUukM1Hw1ows3quO6Lt6s4Ni-FuF_bYkGgy4tw3BHM8Ut_c6QY6q9InJUTd_RDbsgTux73VEPsrfm\" alt=\"\"\/><\/figure>\n\n\n\n<p>where the mi are pairwise relatively prime. Then the system has a unique solution modulo <img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/lh6.googleusercontent.com\/JmOv2Fs_isVTmn3N0Z6AH2mi80eAzHN201S8RCXJQxmoLKxHWV5W_5YvIhc7IN3PmagGHeLjRS5yx2fxLAUDfkzmVAGWD8o_xNeF1GUmoh81tXWYlbP2P_DIYAj6Nv-XGnC6TGfv\" width=\"144\" height=\"20\"><\/p>\n\n\n\n<p><strong>Proposition:&nbsp; <\/strong>Consider the system<\/p>\n\n\n\n<figure class=\"wp-block-image\"><img decoding=\"async\" src=\"https:\/\/lh6.googleusercontent.com\/sV9-91ZdxO0HIpT0O20N39U_1rXan7gcI4zPZ-RQ7IwHWdVu2uebU3LLOABPjiCOCTuJFWEJ57swGyZfdhYp34-mr5BZS8T48SwY1sdPba1tcQY8HxjN1HAZ9NeHVo8CI1onfniz\" alt=\"\"\/><\/figure>\n\n\n\n<p>Of congruence equations<\/p>\n\n\n\n<figure class=\"wp-block-image is-resized\"><img decoding=\"async\" src=\"https:\/\/lh6.googleusercontent.com\/SdHROTfMJaNr-zBM4NdRsnTunnaW7iETeDeiZ7h56z-Gs-ZZ0VwufIbYhQ-nI5GM9sW981SVsdSVP4uDTTesAXbwkMdTgpdnUeisYRljUVWsvDTgFNapv-nxAKC9C-oQF6lHKNLX\" alt=\"\" style=\"width:348px;height:73px\"\/><\/figure>\n\n\n\n<p>(Then each pair&nbsp; and&nbsp; are co-prime.) Let <img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/lh3.googleusercontent.com\/5fe8tCtdqSxAYobU7qICHXehgu3ks_-GKsro-s0vgjdTBOb84TJk1tPQa3RARmImApkPVxTZs-oUkKChvi234pnqklOU3C1x40ce84MlkYgdzvJDO0gBVkCIx6tEqq37rvuIObAS\" width=\"101\" height=\"22\"> be the solutions respectively, of the congruence equations<\/p>\n\n\n\n<figure class=\"wp-block-image is-resized\"><img decoding=\"async\" src=\"https:\/\/lh6.googleusercontent.com\/fKjAQNSYnfNTRKDNgEndWTm0QtX6L-YwUQZ-MYV-Ezib7afNqmodzs-He56-F64Bxr5y6oUMSupEUzwqDUkOStmvbQ3QGhSix6XUX-6KKoVe6fPlkEo1JuvJwKvBo5oe6-OB7Nm8\" alt=\"\" style=\"width:380px;height:20px\"\/><\/figure>\n\n\n\n<p><strong>Then the following is a solution of the system (1)<\/strong><\/p>\n\n\n\n<figure class=\"wp-block-image is-resized\"><img decoding=\"async\" src=\"https:\/\/lh3.googleusercontent.com\/k9xAaSQfli70KFufamDFBzPulyeOki2TYDYckkL5hw0muwlD9JUdfCEuY1VJZevAv1pksPGUldOzr_aPT7w8SHWAR4Cjzk6ASBZdQv_ohkJNGUVxLsBeyD7-rknhPhm4WUXUzVfF\" alt=\"\" style=\"width:280px;height:31px\"\/><\/figure>\n\n\n\n<p>Now we will solve the riddle asked by Chinese:<\/p>\n\n\n\n<p><strong>First method:<\/strong> (a) x \u2261 2 (mod 3) and (b) x \u2261 4 (mod 5)<\/p>\n\n\n\n<p>Chinese remainder theorem tells us there is a unique solution modulo M = 3 \u30fb 5 = 15. Adding multiples of the modulus m = 5 to the given solution x = 4 of the second equation (b), we obtain the following three solutions of (b) which are less than 15:<\/p>\n\n\n\n<p>4, 9, 14<\/p>\n\n\n\n<p>Testing each of these solutions in equation (a), we find that 14 is the only solution of both equations. Now we apply the same process to the two equations<\/p>\n\n\n\n<p>(c) x \u2261 14 (mod 15) and (d) x \u2261 6 (mod 7)<\/p>\n\n\n\n<p>Chinese remainder theorem tells us there is a unique solution modulo M = 15 \u30fb 7 = 105 .<\/p>\n\n\n\n<p>Adding multiples of the modulus m = 15 to the given solution x = 14 of the first equation (c), we obtain the following seven solutions of (b) which are less than 105:<\/p>\n\n\n\n<p>14, 29, 44, 59, 74, 89, 104<\/p>\n\n\n\n<p>Testing each of these solutions of (c) in the second equation (d) we find that 104 is the only solution of both equations. Thus the smallest positive integer satisfying all three equations is<\/p>\n\n\n\n<p>x = 104<\/p>\n\n\n\n<p>This is the solution of the riddle.<\/p>\n\n\n\n<h2 class=\"wp-block-heading\"><strong>Second method:<\/strong><\/h2>\n\n\n\n<p>M = 3 \u30fb 5 \u30fb 7 = 105, M1 = 105\/3 = 35, M2 = 105\/5 = 21, M3 = 105\/7 = 15<\/p>\n\n\n\n<p>Using the above notation, we obtain<\/p>\n\n\n\n<p>We now seek solutions to the equations<\/p>\n\n\n\n<p>35x \u2261 1 (mod 3), 21x \u2261 1 (mod 5), 15x \u2261 1 (mod 7)<\/p>\n\n\n\n<p>Reducing 35 modulo 3, reducing 21 modulo 5, and reducing 15 modulo 7, yields the system<\/p>\n\n\n\n<p>2x \u2261 1 (mod 3), x \u2261 1 (mod 5), x \u2261 1 (mod 7) <a href=\"https:\/\/khmldc.khm.gov.ua\/\">https:\/\/khmldc.khm.gov.ua\/<\/a><\/p>\n\n\n\n<p>The solutions of these three equations are, respectively,<\/p>\n\n\n\n<p>s1 = 2, s2 = 1, s3 = 1<\/p>\n\n\n\n<p>We now substitute into the formula (1) to obtain the following solution of our original system:<\/p>\n\n\n\n<p>x0 = 35 \u30fb 2 \u30fb 2 + 21 \u30fb 1 \u30fb 4 + 15 \u30fb 1 \u30fb 6 = 314<\/p>\n\n\n\n<p>Dividing this solution by the modulus M = 105, we obtain the remainder<\/p>\n\n\n\n<p>x = 104 which is the unique solution of the riddle between 0 and 105.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Chinese remainder theorem- Once a Chinese riddle asks the following question- Is there a positive integer x such that when x is divided by 3 it yields a remainder 2, when x is divided by 5 it yields a remainder 4, and when x is divided by 7 it yields a remainder 6?<\/p>\n","protected":false},"author":3,"featured_media":7397,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"_jetpack_memberships_contains_paid_content":false,"footnotes":""},"categories":[31],"tags":[],"class_list":["post-7597","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-maths"],"yoast_head":"<!-- This site is optimized with the 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