TY - GEN
T1 - Defect-oriented and time-constrained wafer-level test-length selection for core-based digital SoCs
AU - Bahukudumbi, Sudarshan
AU - Chakrabarty, Krishnendu
PY - 2006
Y1 - 2006
N2 - Product cost is a major driver in the consumer electronics market, which is characterized by low profit margins and the use of core-based system-on-chip (SoC) designs. Packaging has been recognized as a significant contributor to the product cost for such SoCs. To reduce packaging cost and the test cost for packaged chips, wafer-level testing (wafer sort) is used in the semiconductor industry to screen defective dies. However, since test time is a major practical constraint for wafer sort, even more so than for package test, not all the scan-based digital tests can be applied to the die under test. We present an optimal test-length selection technique for wafer-level testing of core-based SoCs. This technique, which is based on a combination of statistical yield modeling and integer linear programming, allows us to determine the number of patterns to use for each embedded core during wafer sort such that the probability of screening defective dies is maximized for a given upper limit on the SoC test time. Simulation results are presented for five of the ITC'02 SoC Test benchmarks.
AB - Product cost is a major driver in the consumer electronics market, which is characterized by low profit margins and the use of core-based system-on-chip (SoC) designs. Packaging has been recognized as a significant contributor to the product cost for such SoCs. To reduce packaging cost and the test cost for packaged chips, wafer-level testing (wafer sort) is used in the semiconductor industry to screen defective dies. However, since test time is a major practical constraint for wafer sort, even more so than for package test, not all the scan-based digital tests can be applied to the die under test. We present an optimal test-length selection technique for wafer-level testing of core-based SoCs. This technique, which is based on a combination of statistical yield modeling and integer linear programming, allows us to determine the number of patterns to use for each embedded core during wafer sort such that the probability of screening defective dies is maximized for a given upper limit on the SoC test time. Simulation results are presented for five of the ITC'02 SoC Test benchmarks.
UR - https://www.scopus.com/pages/publications/39749094391
UR - https://www.scopus.com/pages/publications/39749094391#tab=citedBy
U2 - 10.1109/TEST.2006.297646
DO - 10.1109/TEST.2006.297646
M3 - Conference contribution
AN - SCOPUS:39749094391
SN - 1424402921
SN - 9781424402922
T3 - Proceedings - International Test Conference
BT - 2006 IEEE International Test Conference, ITC
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2006 IEEE International Test Conference, ITC
Y2 - 22 October 2006 through 27 October 2006
ER -