Pipelined LDPC arithmetic unit
An improvement to an arithmetic unit of a low-density parity-check decoder, where the arithmetic unit has a pipelined architecture of modules. A first module calculates a difference between absolute values of md_R and md_g_in, and passes the result to a first Gallager module. The first Gallager modu...
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creator | VUKOVIC VOJISLAV SCEPANOVIC RANKO ANDREEV ALEXANDER |
description | An improvement to an arithmetic unit of a low-density parity-check decoder, where the arithmetic unit has a pipelined architecture of modules. A first module calculates a difference between absolute values of md_R and md_g_in, and passes the result to a first Gallager module. The first Gallager module converts this value from a p0/p1 representation to a 2*p0−1 representation, and passes the result to a second module. The second module selectively adjusts the result of the previous module based on the sign values of md_g_in and md_R, and passes one of its outputs to a third module (the other two outputs, loc_item_out and hard_out, are not a part of the pipeline). The third module calculates a new md_g value by adding the result of the second module and loc_item_in, and passes this result to a fourth module. The fourth module separates a sign and an absolute value of the new md_g, and passes the result to a second Gallager module. The second Gallager module converts the result from the 2*p0−1 representation to the p0/p1 representation and the final value leaves the unit as md_g_out. In these calculations, md_R=a check node value from the previous iteration, md_g=an edge value (md_g_in-from the previous iteration, md_g_out-for the next iteration), p0=probability that a value is zero, p1=probability that a value is one, loc_item_in/loc_item_out=intermediate values used for the md_g_out calculation, and hard_out=a bit value estimation for the current iteration of the pipelined arithmetic unit. |
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A first module calculates a difference between absolute values of md_R and md_g_in, and passes the result to a first Gallager module. The first Gallager module converts this value from a p0/p1 representation to a 2*p0−1 representation, and passes the result to a second module. The second module selectively adjusts the result of the previous module based on the sign values of md_g_in and md_R, and passes one of its outputs to a third module (the other two outputs, loc_item_out and hard_out, are not a part of the pipeline). The third module calculates a new md_g value by adding the result of the second module and loc_item_in, and passes this result to a fourth module. The fourth module separates a sign and an absolute value of the new md_g, and passes the result to a second Gallager module. The second Gallager module converts the result from the 2*p0−1 representation to the p0/p1 representation and the final value leaves the unit as md_g_out. In these calculations, md_R=a check node value from the previous iteration, md_g=an edge value (md_g_in-from the previous iteration, md_g_out-for the next iteration), p0=probability that a value is zero, p1=probability that a value is one, loc_item_in/loc_item_out=intermediate values used for the md_g_out calculation, and hard_out=a bit value estimation for the current iteration of the pipelined arithmetic unit.</description><language>eng</language><subject>BASIC ELECTRONIC CIRCUITRY ; CODE CONVERSION IN GENERAL ; CODING ; DECODING ; ELECTRICITY</subject><creationdate>2010</creationdate><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://worldwide.espacenet.com/publicationDetails/biblio?FT=D&date=20100615&DB=EPODOC&CC=US&NR=7739575B2$$EHTML$$P50$$Gepo$$Hfree_for_read</linktohtml><link.rule.ids>230,308,780,885,25564,76547</link.rule.ids><linktorsrc>$$Uhttps://worldwide.espacenet.com/publicationDetails/biblio?FT=D&date=20100615&DB=EPODOC&CC=US&NR=7739575B2$$EView_record_in_European_Patent_Office$$FView_record_in_$$GEuropean_Patent_Office$$Hfree_for_read</linktorsrc></links><search><creatorcontrib>VUKOVIC VOJISLAV</creatorcontrib><creatorcontrib>SCEPANOVIC RANKO</creatorcontrib><creatorcontrib>ANDREEV ALEXANDER</creatorcontrib><title>Pipelined LDPC arithmetic unit</title><description>An improvement to an arithmetic unit of a low-density parity-check decoder, where the arithmetic unit has a pipelined architecture of modules. A first module calculates a difference between absolute values of md_R and md_g_in, and passes the result to a first Gallager module. The first Gallager module converts this value from a p0/p1 representation to a 2*p0−1 representation, and passes the result to a second module. The second module selectively adjusts the result of the previous module based on the sign values of md_g_in and md_R, and passes one of its outputs to a third module (the other two outputs, loc_item_out and hard_out, are not a part of the pipeline). The third module calculates a new md_g value by adding the result of the second module and loc_item_in, and passes this result to a fourth module. The fourth module separates a sign and an absolute value of the new md_g, and passes the result to a second Gallager module. The second Gallager module converts the result from the 2*p0−1 representation to the p0/p1 representation and the final value leaves the unit as md_g_out. In these calculations, md_R=a check node value from the previous iteration, md_g=an edge value (md_g_in-from the previous iteration, md_g_out-for the next iteration), p0=probability that a value is zero, p1=probability that a value is one, loc_item_in/loc_item_out=intermediate values used for the md_g_out calculation, and hard_out=a bit value estimation for the current iteration of the pipelined arithmetic unit.</description><subject>BASIC ELECTRONIC CIRCUITRY</subject><subject>CODE CONVERSION IN GENERAL</subject><subject>CODING</subject><subject>DECODING</subject><subject>ELECTRICITY</subject><fulltext>true</fulltext><rsrctype>patent</rsrctype><creationdate>2010</creationdate><recordtype>patent</recordtype><sourceid>EVB</sourceid><recordid>eNrjZJALyCxIzcnMS01R8HEJcFZILMosychNLclMVijNyyzhYWBNS8wpTuWF0twMCm6uIc4euqkF-fGpxQWJyal5qSXxocHm5saWpuamTkbGRCgBAIwJI_Q</recordid><startdate>20100615</startdate><enddate>20100615</enddate><creator>VUKOVIC VOJISLAV</creator><creator>SCEPANOVIC RANKO</creator><creator>ANDREEV ALEXANDER</creator><scope>EVB</scope></search><sort><creationdate>20100615</creationdate><title>Pipelined LDPC arithmetic unit</title><author>VUKOVIC VOJISLAV ; SCEPANOVIC RANKO ; ANDREEV ALEXANDER</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-epo_espacenet_US7739575B23</frbrgroupid><rsrctype>patents</rsrctype><prefilter>patents</prefilter><language>eng</language><creationdate>2010</creationdate><topic>BASIC ELECTRONIC CIRCUITRY</topic><topic>CODE CONVERSION IN GENERAL</topic><topic>CODING</topic><topic>DECODING</topic><topic>ELECTRICITY</topic><toplevel>online_resources</toplevel><creatorcontrib>VUKOVIC VOJISLAV</creatorcontrib><creatorcontrib>SCEPANOVIC RANKO</creatorcontrib><creatorcontrib>ANDREEV ALEXANDER</creatorcontrib><collection>esp@cenet</collection></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext_linktorsrc</fulltext></delivery><addata><au>VUKOVIC VOJISLAV</au><au>SCEPANOVIC RANKO</au><au>ANDREEV ALEXANDER</au><format>patent</format><genre>patent</genre><ristype>GEN</ristype><title>Pipelined LDPC arithmetic unit</title><date>2010-06-15</date><risdate>2010</risdate><abstract>An improvement to an arithmetic unit of a low-density parity-check decoder, where the arithmetic unit has a pipelined architecture of modules. A first module calculates a difference between absolute values of md_R and md_g_in, and passes the result to a first Gallager module. The first Gallager module converts this value from a p0/p1 representation to a 2*p0−1 representation, and passes the result to a second module. The second module selectively adjusts the result of the previous module based on the sign values of md_g_in and md_R, and passes one of its outputs to a third module (the other two outputs, loc_item_out and hard_out, are not a part of the pipeline). The third module calculates a new md_g value by adding the result of the second module and loc_item_in, and passes this result to a fourth module. The fourth module separates a sign and an absolute value of the new md_g, and passes the result to a second Gallager module. The second Gallager module converts the result from the 2*p0−1 representation to the p0/p1 representation and the final value leaves the unit as md_g_out. In these calculations, md_R=a check node value from the previous iteration, md_g=an edge value (md_g_in-from the previous iteration, md_g_out-for the next iteration), p0=probability that a value is zero, p1=probability that a value is one, loc_item_in/loc_item_out=intermediate values used for the md_g_out calculation, and hard_out=a bit value estimation for the current iteration of the pipelined arithmetic unit.</abstract><oa>free_for_read</oa></addata></record> |
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subjects | BASIC ELECTRONIC CIRCUITRY CODE CONVERSION IN GENERAL CODING DECODING ELECTRICITY |
title | Pipelined LDPC arithmetic unit |
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