For in-rack links, passive DAC is the best choice wherever reach allows, because it adds essentially no power and no retiming latency. Beyond passive DAC reach, ACC extends to around 5 m at 800G using equalisation, and AEC reaches around 7 to 10 m using a DSP or retimer in each connector. AOC covers longer runs up to 100 m and beyond. Distance decides, and the shortest viable option is usually the right one.
Short-reach links inside a rack are carried by one of four things, and the choice between them is more consequential than it looks. Multiplied across a fabric, it affects power, cooling, latency consistency and cost together.
The four are passive direct attach copper, active copper cable, active electrical cable and active optical cable. They differ in what electronics sit inside the connector heads, and that difference determines reach, power and behaviour.
A passive DAC is twinax copper and two connector assemblies with no active electronics. Signal integrity depends entirely on the cable construction and the host SerDes.
That simplicity is the advantage. There is no conversion, no retiming and no meaningful power draw. Latency is the propagation time down the copper and nothing else. There is also no active component to fail, which matters when the cable is buried in a cable management arm behind a production server.
The limit is reach. As lane rates move past 100G, passive copper runs out of margin quickly, and passive DAC at 800G covers only the shortest intra-rack runs.
An active copper cable adds equalisation and amplification circuits in the connector heads to compensate for cable loss. This extends reach to around 5 m at 800G while keeping power draw low.
ACC fits the case where a link is slightly too long for passive copper but nowhere near long enough to justify optics. Tall cabinets, shared cabinets and rack layouts where the switch is not adjacent to the servers it feeds are typical.
An active electrical cable integrates a DSP or retimer in each connector, which reconstructs and cleans the electrical signal rather than simply boosting it. That enables error-free transmission up to around 7 to 10 m at 400G and 800G.
The retiming has a second benefit. Because each end presents a clean electrical eye to the host, the link is less sensitive to host SerDes variation and to cable routing. In dense AI racks where cable bend and congestion are unavoidable, that stability is worth the small power cost.
An active optical cable puts a miniature optical engine inside each connector shell, with laser drivers and VCSELs at one end and receivers at the other. Reach extends to 100 m and beyond, the cable is light and thin, and it is immune to electromagnetic interference.
The trade is flexibility. An AOC is a fixed-length assembly, so a failure means replacing the whole cable rather than a module, and reconfiguration means new cable. It suits point-to-point links that are unlikely to change.
| Type | Electronics in connector | Typical reach at 800G | Power | Latency |
| Passive DAC | None | Shortest intra-rack runs | Negligible | Lowest, propagation only |
| ACC | Equalisation and amplification | Around 5 m | Low | Very low |
| AEC | DSP or retimer | Around 7 to 10 m | Low to moderate | Low, with retiming step |
| AOC | Optical engine both ends | 100 m and beyond | Moderate |
One caveat on measurement. Routed length in a populated rack is regularly double the floor-plan distance once cable management is accounted for. Specifying from a drawing rather than a measurement is the most common reason a cable arrives too short.
DAC, ACC, AEC and AOC are all fixed-length assemblies. That is efficient for a stable layout and awkward for one that changes. Where a rack is expected to be reconfigured, or where the link crosses into structured cabling, pluggable optics on patched fibre give more flexibility at the cost of more power and more connectors.
ATOP builds proprietary DAC, ACC, AEC and AOC designs alongside its optical transceiver range, in 400G and 800G and across earlier speeds, so the choice can be made on link characteristics rather than on what is available.