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A 28nm High-κ metal-gate single-chip communications processor with 1.5GHz dual-core application processor and LTE/HSPA+-capable baseband processor.

, , , , , , , , , , , , , , and . ISSCC, page 156-157. IEEE, (2013)

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Multicore design is the challenge! what is the solution?, , , , , , , and . DAC, page 128-130. ACM, (2008)A 28nm 600MHz Automotive Flash Microcontroller with Virtualization-Assisted Processor for Next-Generation Automotive Architecture Complying with ISO26262 ASIL-D., , , , , , , , , and 3 other author(s). ISSCC, page 54-56. IEEE, (2019)10.2 A 28nm HPM heterogeneous multi-core mobile application processor with 2GHz cores and low-power 1GHz cores., , , , , , , , , and 4 other author(s). ISSCC, page 178-179. IEEE, (2014)SH-X: an embedded processor core for consumer appliances., , , , , , and . MEDEA@PACT, page 33-40. ACM, (2004)Low-power and high-performance technologies for mobile SoC in LTE era.. ISLPED, page 1-2. IEEE/ACM, (2011)A 4320MIPS Four-Processor Core SMP/AMP with Individually Managed Clock Frequency for Low Power Consumption., , , , , , , , , and 4 other author(s). ISSCC, page 100-590. IEEE, (2007)Low-Power Design of 90-nm SuperH Processor Core., , , , , , , , , and 1 other author(s). ICCD, page 258-266. IEEE Computer Society, (2005)Design methodology of low-power microprocessors.. ASP-DAC, page 390-393. ACM, (2003)Multi-Core/Multi-IP Technology for Embedded Applications., and . IEICE Trans. Electron., 92-C (10): 1232-1239 (2009)A 390MHz Single-Chip Application and Dual-Mode Baseband Processor in 90nm Triple-Vt CMOS., , , , , , , , , and 2 other author(s). ISSCC, page 274-602. IEEE, (2007)