AMD Ryzen AI Embedded P132 vs Intel Core i3-14100F Comparison
AMD Ryzen AI Embedded P132
Core i3-14100F
PERFORMANCE BENCHMARKS
Analysis: AMD Ryzen AI Embedded P132 vs Intel Core i3-14100F
Head-to-Head Benchmarks
The recorded data shows a decisive advantage for the AMD Ryzen AI Embedded P132 in the majority of PassMark workloads. Out of 11 head-to-head benchmark comparisons, the AMD part wins 7, while the Intel Core i3-14100F wins 4. The most significant margin comes in random string sorting, where the AMD processor scores 25,181 against Intel's 17,596, a 43.1% advantage. This suggests a substantial lead in memory-bound sorting and pointer-chasing operations.
The AMD chip also dominates in extended instructions, scoring 16,520 versus 11,984, a 37.9% delta. Integer math follows closely behind with a 37.2% advantage (62,249 vs 45,357). Data compression shows a 30.9% lead (230,437 vs 176,106), and encryption workloads reveal a 28.3% edge (11,444 vs 8,922). In floating-point math, the AMD part is 19.4% ahead (42,248 vs 35,370). The multithread score favors AMD at 19,262 versus 15,420, a 24.9% difference. Each of these deltas represents a consistent pattern of higher throughput for the Ryzen part across compute-intensive tasks.
The Intel Core i3-14100F wins in fewer but notable areas. Its strongest victory is in find prime numbers, where it scores 61 versus 57, a 6.6% advantage. The physics benchmark shows Intel ahead at 1,077 versus 1,022, a 5.1% margin. In single-thread performance, Intel takes a narrow 1.7% lead with a score of 3,778 versus 3,713. The singlethread test repeats the same result, confirming the single-core edge is small but consistent. Aggregate benchmark averages reinforce this split: the AMD processor has an average benchmark score of 37,804, while the Intel chip averages 18,519. The percentile rankings place the AMD part at the 86th percentile of all CPUs, whereas the Intel chip sits at the 72nd percentile.
Where Each One Wins
The AMD Ryzen AI Embedded P132 wins in workloads that scale with core count, cache hierarchy, and sustained throughput. Its 6 cores and 12 threads outperform the Intel part's 4 cores and 8 threads in multithreaded PassMark tests. The data compression, encryption, extended instructions, integer math, floating-point math, multithread, and random string sorting wins all point to a processor that handles parallel and data-heavy tasks more efficiently. The 43.1% margin in random string sorting and the 37.9% margin in extended instructions are the clearest signals for developers or embedded workloads that rely on SIMD-style operations or frequent data rearrangements.
The Intel Core i3-14100F wins in single-thread-sensitive and low-latency scenarios. The find prime numbers test, which is heavily dependent on integer division and branch prediction, favors Intel by 6.6%. The physics benchmark, often reflecting short-burst single-threaded execution, gives Intel a 5.1% edge. The single-thread score of 3,778 versus 3,713, a 1.7% lead, confirms that Intel's higher boost clock of 4.70 GHz against AMD's 4.50 GHz translates into a slight advantage for lightly threaded applications. This pattern suggests the Intel chip is better suited for older software, real-time control loops, or any workload that cannot utilize more than a few threads.
Architecture Differences
The two processors come from different design philosophies. The AMD Ryzen AI Embedded P132 uses the Gorgon Point codename with a hybrid Zen 5 / Zen 5c generation. It is fabricated on a 4 nm process at TSMC, while the Intel Core i3-14100F uses Raptor Lake-R architecture on Intel's 10 nm process. The AMD chip is a mobile market segment part with a 28 W TDP, whereas the Intel chip is a desktop part with a 58 W TDP. The socket differences are fundamental: AMD uses Socket FP8, Intel uses Socket 1700.
Cache configurations diverge sharply. Both share 80 KB of L1 per core. The AMD part has 1 MB of L2 per core, while Intel has 1.25 MB per core. The L3 cache is where the gap widens: AMD has only 4 MB total L3, while Intel has 12 MB shared L3. Despite Intel's larger L3, the AMD chip still wins most multithreaded benchmarks, indicating that core count and memory bandwidth compensate for the smaller last-level cache.
Memory support differs as well. The AMD processor supports DDR5 and LPDDR5X with a dual-channel bus and a recorded memory bandwidth of 89.6 GB/s. The Intel chip supports DDR4 and DDR5 with a dual-channel bus, but the database lists no memory bandwidth figure. Both support ECC memory. PCIe capabilities show a contrast: AMD offers Gen 4 with 14 lanes (CPU only), while Intel offers Gen 5 with 16 lanes (CPU only). The AMD part includes integrated Radeon 840M graphics, while the Intel Core i3-14100F has no integrated graphics (N/A). The AMD chip's die size is not recorded, but Intel's die is listed at 163 mm².
The Verdict
The data favors the AMD Ryzen AI Embedded P132 for any workload that uses multiple threads. Its 24.9% multithread lead, combined with 30.9% to 43.1% margins in data-heavy benchmarks, makes it the stronger choice for embedded systems, edge servers, or compact industrial PCs where the 28 W TDP also reduces thermal demands. The AMD part's 86th percentile ranking versus Intel's 72nd percentile shows a clear overall performance tier difference.
The Intel Core i3-14100F is the better pick when single-thread responsiveness matters more than raw throughput. Its 1.7% single-thread lead and 6.6% advantage in prime number finding indicate an edge for latency-sensitive or lightly threaded applications. The 58 W TDP and desktop socket imply a traditional ATX or micro-ATX build, but the benchmark data does not show a compensating multithreaded benefit. For systems where the software is strictly single-threaded or where the Intel platform's larger 12 MB L3 cache and Gen 5 PCIe lanes are required, the Intel chip holds a niche. Otherwise, the recorded measurements point to the AMD processor as the higher-performing part in the majority of tests.
FAQ
Q: Which processor has the higher average benchmark score?
A: The AMD Ryzen AI Embedded P132 has an average benchmark score of 37,804, while the Intel Core i3-14100F averages 18,519.
Q: How large is the multithread performance gap?
A: In the PassMark multithread test, the AMD processor scores 19,262 against Intel's 15,420, a 24.9% advantage for AMD.
Q: Does the Intel chip win any benchmark by a wide margin?
A: No. Intel's largest win is in find prime numbers, where it leads by 6.6% (61 vs 57). All other Intel wins are under 6%.
Q: What is the difference in CPU core and thread counts?
A: The AMD Ryzen AI Embedded P132 has 6 cores and 12 threads, while the Intel Core i3-14100F has 4 cores and 8 threads.
Q: Which processor has more L3 cache?
A: The Intel Core i3-14100F has 12 MB of shared L3 cache, whereas the AMD Ryzen AI Embedded P132 has 4 MB.
Q: Do both processors support ECC memory?
A: Yes, both the AMD Ryzen AI Embedded P132 and the Intel Core i3-14100F support ECC memory.
Q: Which chip includes integrated graphics?
A: The AMD Ryzen AI Embedded P132 includes Radeon 840M integrated graphics, while the Intel Core i3-14100F has no integrated graphics (N/A).
Specification Differences
| Specification | AMD Ryzen AI Embedded P132 | Intel Core i3-14100F |
| --- | --- | --- |
| Manufacturer | AMD | Intel |
| Cores | 6 | 4 |
| Threads | 12 | 8 |
| Base Clock | 2.00 GHz | 3.50 GHz |
| Boost Clock | 4.50 GHz | 4.70 GHz |
| TDP | 28 W | 58 W |
| Socket | AMD Socket FP8 | Intel Socket 1700 |
| Codename | Gorgon Point | Raptor Lake-R |
| Generation | Ryzen AI Embedded (Zen 5 / Zen 5c) | Core i3 (Raptor Lake Refresh) |
| Process Node | 4 nm | 10 nm |
| Foundry | TSMC | Intel |
| Die Size | Not recorded | 163 mm² |
| L2 Cache | 1 MB (per core) | 1.25 MB (per core) |
| L3 Cache | 4 MB | 12 MB (shared) |
| Memory Support | DDR5, LPDDR5X | DDR4, DDR5 |
| Memory Bandwidth | 89.6 GB/s | Not recorded |
| PCIe | Gen 4, 14 Lanes (CPU only) | Gen 5, 16 Lanes (CPU only) |
| Integrated Graphics | Radeon 840M | N/A |
| Market Segment | Mobile | Desktop |
| Launch MSRP | Not recorded | $109 |
| Part Number | unknown | SRMX2 |
| Release Date | 2026-03-08 | 2024-01-07 |