Apple A15
System on a chip (SoC) designed by Apple Inc.
The Apple A15 Bionic is a 64-bit ARM-based system on a chip (SoC) designed by Apple Inc. , part of the Apple silicon series. It is used in the iPhone 13 and 13 Mini , iPhone 13 Pro and 13 Pro Max , iPad Mini (6th generation) , iPhone SE (3rd generation) , iPhone 14 and 14 Plus and Apple TV 4K (3rd generation) .[ 6]
Design
The Apple A15 Bionic features an Apple-designed 64-bit six-core CPU implementing ARMv8 with two high-performance cores called Avalanche running at 3.24 GHz and four energy-efficient cores called Blizzard running at 2.01 GHz. Apple claims the A15 in the iPhones is 50% faster than the competition. Apple claims the A15 in the iPad Mini 6 is 40% faster than the A12.[ 7] An in-depth breakdown by Anandtech revealed that "compared to the A14, the new A15 increases the peak single-core frequency of the two-performance core cluster by 8%, now reaching up to 3240MHz compared to the 2998MHz of the previous generation. When both performance cores are active, their operating frequency goes up by 10%, both now running at 3180MHz compared to the previous generation’s 2890MHz".[ 8] [ 9]
The A15 contains 15 billion transistors, a 27.1% increase from the A14 's transistor count of 11.8 billion. It includes dedicated neural network hardware that Apple calls a new 16-core Neural Engine.[ 10] The Neural Engine can perform 15.8 trillion operations per second, faster than A14's 11 trillion operations per second (+ 43%).[ 10] The A15 also includes a new image processor (ISP) with improved computational photography capabilities.[ 11] Apple also boosted performance by doubling the system cache to 32MB.[ 12]
The A15 has video codec encoding support for HEVC , H.264 , and ProRes (iPhone 13 Pro only). It has decoding support for HEVC, H.264, MPEG‑4 Part 2 , ProRes, and Motion JPEG .[ 13]
A15 is manufactured by TSMC, reportedly on their second-generation 5 nm fabrication process, N5P.[ 14] [ 15]
GPU
The A15 integrates an Apple-designed five-core GPU for the iPad mini (6th generation) , iPhone 13 Pro and 13 Pro Max, iPhone 14 and 14 Plus and Apple TV 4K (3rd generation), though in the Apple TV variant one efficiency CPU core is disabled.[ 16] One GPU core is disabled in the iPhone SE (3rd generation) , and iPhone 13 and 13 Mini, resulting in a four-core GPU for these models.[ 17]
Products
Products that include the Apple A15 Bionic are:
Variants
The table below shows the various SoCs based on the "Avalanche" and "Blizzard" microarchitectures.[ 19]
Variant
CPU
cores (P+E)*
GPU cores
GPUEU
GraphicsALU
Neural Engine
cores
Neural Engine
performance
Memory (GB)
Transistor count
A15 Bionic
5 (2+3)
5
80
640
16
15.8 TOPS
4
15 billion
6 (2+4)
4
64
512
16
4
5
80
640
16
6
M2
8 (4+4)
8
128
1024
16
8–24
20 billion
10
160
1280
16
M2 Pro
10 (6+4)
16
256
2048
16
16–32
40 billion
12 (8+4)
19
304
2432
16
M2 Max
12 (8+4)
30
480
3840
16
32–96
67 billion
38
608
4864
16
M2 Ultra
24 (16+8)
60
960
7680
32
31.6 TOPS
64–192
134 billion
76
1216
9728
32
* (Performance + Power efficiency)
See also
References
^ "What's inside the Apple iPhone 13 Pro Teardown?" . Archived from the original on 2021-09-25. Retrieved 2021-09-25 .
^ "IPhone 13 Pro Geekbench Score Reveals A15 Bionic Frequency Upgrade; CPU/GPU Again Tops | SPARROWS NEWS" . 16 September 2021. Archived from the original on 22 September 2022. Retrieved 16 September 2021 .
^ a b "Underclocked: The A15 chip inside Apple's new iPad mini 6 is slower than in the iPhone 13" . 16 September 2021. Archived from the original on 2021-09-17. Retrieved 2021-09-17 .
^ "llvm-project/llvm/unittests/TargetParser/TargetParserTest.cpp at main · llvm/llvm-project · GitHub" . GitHub . 10 September 2024. Retrieved 10 September 2024 .
^ "Apple unveils M2, taking the breakthrough performance and capabilities of M1 even further" . Archived from the original on 2022-06-06. Retrieved 2024-05-19 .
^ "Apple A15 Bionic Powers iPhone 13 and iPad Mini" . Tom's Hardware . September 14, 2021. Archived from the original on September 22, 2022. Retrieved September 14, 2021 .
^ Frumusanu, Andrei (September 14, 2021). "Apple Announces iPhone 13 Series: A15, New Cameras, New Screens" . AnandTech . Archived from the original on May 14, 2022. Retrieved September 15, 2021 .
^ "Apple's A15 Bionic announcements undersells improvements over A14" . AppleInsider . 5 October 2021. Archived from the original on 2022-01-29. Retrieved 2022-01-29 .
^ Frumusanu, Andrei. "The Apple A15 SoC Performance Review: Faster & More Efficient" . www.anandtech.com . Archived from the original on 2022-07-30. Retrieved 2022-01-29 .
^ a b Shankland, Stephen (September 14, 2021). "Apple's A15 Bionic chip powers iPhone 13 with 15 billion transistors, new graphics and AI" . CNET . Archived from the original on April 2, 2022. Retrieved September 15, 2021 .
^ "Apple unveils iPhone 13 Pro and iPhone 13 Pro Max — more pro than ever before" . Apple Newsroom . Archived from the original on 2021-09-15. Retrieved 2021-09-14 .
^ "Apple unveils new a15 bionic soc" . ExtremeTech . Archived from the original on 2022-04-21. Retrieved 2021-09-16 .
^ "iPhone 13 – Technical Specifications" . support.apple.com . Archived from the original on 2021-10-27. Retrieved 2021-10-24 .
^ Hruska, Joel (September 15, 2021). "Apple Unveils New A15 Bionic SoC" . ExtremeTech . Archived from the original on April 21, 2022. Retrieved September 15, 2021 .
^ Sohail, Omar (March 30, 2021). "Apple's A15 Bionic to Use TSMC's 'N5P' Process for the Upcoming iPhone 13 Series; Mass Production Could Start in May" . Wccftech . Archived from the original on September 16, 2021. Retrieved September 15, 2021 .
^ Rossignol, Joe (2022-11-14). "New Apple TV Reportedly Equipped With Binned A15 Chip With 5-Core CPU" . macrumors.com . Retrieved 2024-08-18 .
^ Espósito, Filipe (2021-09-15). "iPhone 13 Pro's A15 Bionic chip has more powerful GPU than regular iPhone 13" . 9to5Mac . Archived from the original on 2021-09-15. Retrieved 2021-09-15 .
^ "Developing tvOS apps" . Apple .
^ "Apple M2 Chip: Everything You Need to Know" . MacRumors . Retrieved 2022-07-30 .
Preceded by
Apple A15 Bionic 2021
Succeeded by
Products
Services
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Companies
Related People
Italics indicate discontinued products, services, or defunct companies.
Category
Application ARM-based chips
Application processors (32-bit)
ARMv7-A
Cortex-A5 Cortex-A7
Allwinner A2x, A3x, A83T, H3, H8
NXP i.MX7 , QorIQ LS10xx , NXP i.MX6UL
Broadcom VideoCore BCM2836, BCM23550
Leadcore LC1813, LC1860/C, LC1913, LC1960
Marvell Armada PXA1920, 1500 mini plus
MediaTek MT65xx
Qualcomm Snapdragon 200, 205, 208, 210, 212 , 400
Cortex-A8 Cortex-A9
Actions ATM702x , ATM703x
Altera Cyclone V, Arria V/10
Amlogic AML8726, MX, M6x, M801, M802/S802, S812, T86x
Apple A5 , A5X
Broadcom VideoCore BCM21xxx, BCM28xxx
Freescale i.MX6
HiSilicon K3V2 , 910's
InfoTM iMAPx912
Leadcore LC1810, LC1811
Marvell Armada 1500 mini
MediaTek MT65xx
Nvidia Tegra , 2 , 3 , 4i
Nufront NuSmart 2816M, NS115, NS115M
Renesas EMMA EV2, R-Car H1, RZ/A
Rockchip RK292x , RK30xx , RK31xx
Samsung Exynos 4 421x , 441x
ST-Ericsson NovaThor
Telechips TCC8803
Texas Instruments OMAP 4
Texas Instruments Sitara AM4xxx
VIA WonderMedia WM88x0, 89x0
Xilinx Zynq-7000
ZiiLABS ZMS-20, ZMS-40
Cortex-A15 Cortex-A17 Others ARMv7-A compatible
Apple A6 , A6X , S1 , S1P , S2 , S3
Broadcom Brahma-B15
Marvell P4J
Qualcomm Snapdragon S1, S2, S3, S4 Plus, S4 Pro, 600, 800 (Scorpion , Krait )
ARMv8-A
Application processors (64-bit)
ARMv8-A
Cortex-A35 Cortex-A53
Actions GT7, S900, V700
Allwinner A64, H5, H64, R18
Altera Stratix 10
Amlogic S9 Family, T96x
Broadcom BCM2837
EZchip TILE-Mx100
HiSilicon Kirin 620 , 650, 655, 658, 659 , 930, 935
Marvell Armada PXA1928, Mobile PXA1908/PXA1936
MediaTek MT673x , MT675x , MT6761V , MT6762 /V , MT6763T , MT6765 /G/H , MT6795 , MT8161, MT8163, MT8165, MT8732, MT8735, MT8752
NXP ARM S32 , QorIQ LS1088, LS1043 , i.MX8M
Qualcomm Snapdragon 215 , 410, 412, 415, 425, 427, 429, 430, 435, 439, 450 , 610, 615, 616, 617, 625, 626, 630
Renesas RZ/V2M
Rockchip RK3328, RK3368
Samsung Exynos 7570, 7578, 7580, 7870, 7880
Texas Instruments Sitara AM6xxx
UNISOC SC9820E , SC9832E, SC9860/GV
Xilinx ZynqMP
Cortex-A57 Cortex-A72
AWS Graviton
Broadcom BCM2711
HiSilicon Kirin 950, 955 , Kunpeng 916
MediaTek MT6797/D/T/X , MT8173, MT8176, MT8693
MStar 6A938
Qualcomm Snapdragon 650, 652, 653
Rockchip RK3399
NXP QorIQ LS2088 , QorIQ LS1046A , QorIQ LX2160A , QorIQ LS1028A , i.MX8
Cortex-A73
Qualcomm Snapdragon 460 , 632, 636, 660, 662, 665, 680, 685 , 6s 4G Gen 1 , 835
Samsung Exynos 7872, 7884, 7885, 7904, 9609, 9610, 9611
HiSilicon Kirin 710 , 960 , 970
MediaTek MT6771/V , MT6799 , MT8183, MT8788
Amlogic S922X
Others ARMv8-A compatible
ARMv8.1-A
ARMv8.2-A
Cortex-A55 Cortex-A75
Qualcomm Snapdragon 670 , 710, 712 , 845 , 850
Samsung Exynos 9820, 9825
MediaTek MT6769H/T/V/Z , MT6768, MT6779V
UNISOC T310, T606, T610, T615, T616, T618, T619, T620, T700, T710, T7200, T7225, T7250, T7255, T7280 , T740
Cortex-A76
Allwinner A733
Google Tensor
HiSilicon Kirin 810, 820 , 980, 985 , 990
Qualcomm Snapdragon 480(+) , 675, 678 , 720G, 730(G), 732G, 765(G), 768G , 855(+), 860 , 7c (Gen 2), 8c, 8cx (Gen 2)
Microsoft SQ1 and SQ2
MediaTek MT6781, MT6785V, MT6789 , MT6833V/P, MT6853V/T , MT6873, MT6875 , Dimensity 6020, 6080, 6100+, 6300(+) , MT8192
Samsung Exynos 990
UNISOC T750, T760, T765, T770, T820, T8100, T8200, T9100
Cortex-A77 Cortex-A78
Google Tensor G2
MediaTek MT6877, MT6878 , MT6879, MT6891, MT6893 , Dimensity 7020, 7025 (Ultra), 7030, 7050, 7300 (Energy/Ultra/X) , 8000, 8020, 8050, 8100, 8200 , Kompanio 900T, 1200, 1380, 1300T
Qualcomm Snapdragon 4 Gen 1, 4(s) Gen 2 , 695 , 6 Gen 1, 6(s) Gen 3 , 778G(+), 780G, 782G , 888(+)
Samsung Exynos 1080, 1280, 1330, 1380 , 2100
Cortex-X1 Neoverse N1 Others
Cortex-A65, Cortex-A65AE, Cortex-A76AE, Cortex-A78C, Cortex-X1C, Neoverse E1
ARMv8.2-A compatible
ARMv8.3-A
ARMv8.4-A
ARMv8.5-A
ARMv8.6-A
ARMv8.7-A
ARMv9.0-A
ARMv9.2-A