AMD Ryzen 3 8300GE vs Intel Core 7 150U Comparison
AMD Ryzen 3 8300GE
Core 7 150U
PERFORMANCE BENCHMARKS
Analysis: AMD Ryzen 3 8300GE vs Intel Core 7 150U
The AMD Ryzen 3 8300GE and Intel Core 7 150U are two very different processors that happen to land at the same overall performance tier. The data shows the AMD part is a 4-core desktop chip built on a modern 4nm process, while the Intel part is a 10-core mobile chip with a hybrid architecture. Both sit at the 71st percentile among all CPUs, and their average benchmark scores are nearly identical — 17614 for the AMD versus 17395 for the Intel. That headline parity masks a stark split in workload behavior. The AMD Ryzen 3 8300GE wins 4 of the 17 head-to-head tests, while the Intel Core 7 150U takes 13. This is not a case of one chip being simply faster; it is a case of two chips with opposite strengths.
The Verdict
Pick the AMD Ryzen 3 8300GE if your priority is sustained multi-threaded rendering in a desktop chassis. The data shows it leads the Intel part by 31.8% in Cinebench R23 multi-core (11705 vs 8883), and it also wins the extended instruction test by 36.3% (11923 vs 8748). It is the stronger choice for anyone running CPU-bound workloads that scale across cores for long durations, such as video encoding or 3D rendering. The AMD chip also edges out the Intel in PassMark single-thread performance by 3.9% (3644 vs 3508), meaning it is not a slouch in lightly threaded tasks either.
Pick the Intel Core 7 150U if you need a mobile processor with better peak single-core speed and stronger performance across a broad range of everyday and math-heavy tasks. It dominates the AMD part in Cinebench R15, R20, and R23 single-core tests, with deltas of -34.6%, -6.4%, and -11.9% respectively. It also wins decisively in PassMark integer math (51057 vs 39163, a 23.3% lead), floating-point math (34405 vs 24681, a 28.3% lead), and physics (1012 vs 750, a 25.9% lead). If your workload involves scientific computing, financial modeling, or anything that relies on raw arithmetic throughput, the Intel chip is the clear winner.
The decision comes down to form factor and workload type. In a desktop with adequate cooling, the AMD Ryzen 3 8300GE delivers better sustained multi-core performance. In a laptop, the Intel Core 7 150U offers a more balanced package with superior single-core speed and math performance. Neither chip is a universal winner; the benchmark data shows a clear trade-off between multi-core endurance and single-core agility.
Architecture Differences
The AMD Ryzen 3 8300GE is built on Zen 4 architecture with the Phoenix2 codename, manufactured on a 4nm process at TSMC. It packs 4 cores and 8 threads, with a base clock of 3.50 GHz and a boost clock of 4.90 GHz. The chip has 64 KB of L1 cache per core and 1 MB of L2 cache per core, plus 8 MB of shared L3 cache. It uses 20,900 million transistors on a 137 mm² die. Memory support is DDR5 on a dual-channel bus with 83.2 GB/s bandwidth, and it supports ECC memory. The integrated graphics are Radeon 740M, and it has Gen 4, 14 Lanes of PCIe (CPU only). It is a desktop part on AMD Socket AM5 with a 35W TDP.
The Intel Core 7 150U uses Raptor Lake architecture with the Raptor Lake-U codename, manufactured on a 10nm process at Intel. It has 10 cores and 12 threads, with a base clock of 1.80 GHz and a boost clock of 5.40 GHz. The L1 cache is 80 KB per core, L2 is 1.25 MB per core, and L3 is 12 MB shared. It supports both DDR4 and DDR5 on a dual-channel bus, but no ECC memory. The integrated graphics are Iris Xe Graphics 96EU, and it has Gen 4, 8 Lanes of PCIe (CPU only). It is a mobile part on Intel BGA 1744 with a 15W TDP.
The most significant architectural differences are the core counts, process nodes, and cache configurations. The Intel chip has more than double the cores (10 vs 4) and more than double the threads (12 vs 8). The AMD chip is on a much smaller process node (4nm vs 10nm), which explains its higher transistor density. The Intel chip has a larger L3 cache (12 MB vs 8 MB) and a much higher boost clock (5.40 GHz vs 4.90 GHz). The AMD chip supports ECC memory, which the Intel chip does not. The power envelopes are also very different: the AMD chip is rated at 35W, while the Intel chip is rated at 15W.
FAQ
Q: Which chip is faster in multi-core rendering?
A: The AMD Ryzen 3 8300GE. It wins Cinebench R23 multi-core by 31.8% (11705 vs 8883) and Cinebench R20 multi-core by 6.3% (4916 vs 5248, where it actually loses — the AMD wins R23 but loses R20).
Q: Which chip has better single-core performance?
A: The Intel Core 7 150U. It wins Cinebench R23 single-core by 11.9% (1875.5 vs 1652) and Cinebench R20 single-core by 6.4% (740 vs 693). However, the AMD chip wins PassMark single-thread by 3.9% (3644 vs 3508).
Q: Which chip is better for math-heavy workloads?
A: The Intel Core 7 150U. It wins PassMark integer math by 23.3% (51057 vs 39163) and floating-point math by 28.3% (34405 vs 24681).
Q: What are the core and thread counts?
A: The AMD Ryzen 3 8300GE has 4 cores and 8 threads. The Intel Core 7 150U has 10 cores and 12 threads.
Q: Which chip supports ECC memory?
A: The AMD Ryzen 3 8300GE supports ECC memory. The Intel Core 7 150U does not.
Q: What is the overall performance percentile for each?
A: Both chips are at the 71st percentile among all CPUs. The AMD chip has an average benchmark score of 17614, and the Intel chip has an average score of 17395.
Specification Differences
| Specification | AMD Ryzen 3 8300GE | Intel Core 7 150U |
|---|---|---|
| Cores | 4 | 10 |
| Threads | 8 | 12 |
| Base Clock | 3.50 GHz | 1.80 GHz |
| Boost Clock | 4.90 GHz | 5.40 GHz |
| TDP | 35W | 15W |
| Process Node | 4 nm | 10 nm |
| Foundry | TSMC | Intel |
| L1 Cache | 64 KB per core | 80 KB per core |
| L2 Cache | 1 MB per core | 1.25 MB per core |
| L3 Cache | 8 MB shared | 12 MB shared |
| Memory Support | DDR5 | DDR4, DDR5 |
| Memory Bandwidth | 83.2 GB/s | Not specified |
| ECC Memory | Yes | No |
| PCIe Lanes | Gen 4, 14 Lanes | Gen 4, 8 Lanes |
| Integrated Graphics | Radeon 740M | Iris Xe Graphics 96EU |
| Socket | AMD Socket AM5 | Intel BGA 1744 |
| Market Segment | Desktop | Mobile |
| Release Date | 2024-04-15 | 2024-01-07 |
Head-to-Head Benchmarks
The Intel Core 7 150U wins the majority of the head-to-head tests, but the AMD Ryzen 3 8300GE wins the two most important multi-core tests. The biggest victory for the AMD chip is in Cinebench R23 multi-core, where it scores 11705 against 8883, a 31.8% advantage. That is a substantial lead in a modern rendering benchmark. The AMD chip also wins PassMark extended instructions by 36.3% (11923 vs 8748), which suggests better SIMD or vector processing capabilities.
The Intel chip's wins are more numerous but often smaller in magnitude. Its largest victory is in Cinebench R15 single-core, where it scores 254 against 166, a 34.6% lead. That is a massive single-core advantage, though R15 single-core scores are generally lower than R20 or R23. The Intel chip also wins PassMark floating-point math by 28.3% (34405 vs 24681) and PassMark physics by 25.9% (1012 vs 750).
In Cinebench R20 multi-core, the Intel chip wins by 6.3% (5248 vs 4916), which is notable because the AMD chip wins the newer R23 multi-core test. This discrepancy suggests the two chips scale differently across benchmark versions. The Intel chip also wins PassMark multi-thread by 8.1% (14700 vs 13507), indicating it handles parallel workloads well despite losing the R23 test.
The single-thread PassMark results are close, with the AMD chip winning by 3.9% (3644 vs 3508). The data compression test is nearly tied, with the Intel chip winning by 2.2% (158622 vs 155164). The random string sorting test is also close, with the Intel chip winning by 1.4% (18269 vs 18010).
Where Each One Wins
The AMD Ryzen 3 8300GE wins in scenarios that demand long-duration multi-core rendering. The 31.8% lead in Cinebench R23 multi-core is the single largest delta in any test, and it signals that the AMD chip sustains high clocks across all four cores under heavy load. This makes it the better choice for desktop users who render videos, run batch photo processing, or compile code. The 36.3% win in extended instructions suggests it also excels at workloads that use advanced CPU instruction sets, such as encryption or scientific simulations. Its ECC memory support and higher TDP (35W vs 15W) indicate it is designed for stability and sustained performance in a desktop environment.
The Intel Core 7 150U wins in scenarios that favor high clock speeds and many cores for mixed workloads. Its 5.40 GHz boost clock is the highest figure in this comparison, and it translates to wins in every Cinebench single-core test (R15, R20, and R23). The 34.6% lead in R15 single-core is particularly striking. The Intel chip also wins all the PassMark math tests (integer, floating-point, find prime numbers) by margins ranging from 23.3% to 28.3%, making it the better choice for number-crunching applications like financial analysis or engineering simulations. Its 10 cores and 12 threads give it an edge in PassMark multi-thread (14700 vs 13507), even though it loses the R23 multi-core test. The lower 15W TDP and mobile socket (BGA 1744) mean it is designed for laptops, where it can deliver strong single-core performance while conserving battery.