Cabling Pinout & Fiber Polarity Reference

Verified against a real device

T568A and T568B side by side as tables and as color-coded strip diagrams, plus crossover and Cisco rollover wiring, PoE Mode A/B pin usage with the 802.3af/at/bt classes, MPO/MTP polarity A/B/C and the copper and fiber Ethernet standards.

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T568A and T568B

Pins 1, 2, 3 and 6 are the only ones that change between the two schemes

T568A plug: pins 1 and 2 are the green pair, pins 3 and 6 the orange pair12345678pin 1 on the left, clip facing you
T568AGreen pair on 1–2, orange pair on 3–6
T568B plug: pins 1 and 2 are the orange pair, pins 3 and 6 the green pair12345678pin 1 on the left, clip facing you
T568BOrange pair on 1–2, green pair on 3–6
PinT568AT568BSignal (10/100 · 1000BASE-T)Differs
1White / greenWhite / orangeTX+ / BI_DA+differs
2GreenOrangeTX- / BI_DA-differs
3White / orangeWhite / greenRX+ / BI_DB+differs
4BlueBlueunused / BI_DC+—
5White / blueWhite / blueunused / BI_DC-—
6OrangeGreenRX- / BI_DB-differs
7White / brownWhite / brownunused / BI_DD+—
8BrownBrownunused / BI_DD-—
Pins that change:1236Pins 4, 5, 7 and 8 are identical, which is why a straight-through cable works with either scheme on both ends.

Crossover — pins 1↔3 and 2↔6

T568B on one end, T568A on the other. Each conductor keeps its color; only its position moves.

Crossover wire map: pins 1 and 3, and pins 2 and 6, are exchanged1234567812345678
T568B pinColorT568A pinColorSignal
1White / orange3White / orangeTX+ / BI_DA+
2Orange6OrangeTX- / BI_DA-
3White / green1White / greenRX+ / BI_DB+
6Green2GreenRX- / BI_DB-

MDI / MDI-X

MDI ports (hosts, routers, uplinks) transmit on pins 1–2 and receive on 3–6; MDI-X ports (switch access ports) do the opposite. A straight-through cable connects the two. Auto-MDI/MDI-X detects and corrects a mismatch on gigabit and faster ports.

Cisco rollover (console)

A full reversal: pins 1↔8, 2↔7, 3↔6, 4↔5. No Ethernet traffic, ever.

Rollover wire map: the eight conductors are reversed end to end1234567812345678
RJ-45 pinRJ-45 signalDB-9Direction
1RTSCTS (8)From the PC
2DTRDSR (6)From the PC
3TxDRxD (2)From the device
4GNDGND (5)Ground
5GNDGND (5)Ground
6RxDTxD (3)From the device
7DSRDTR (4)From the device
8CTSRTS (7)From the device

Never patch a rollover cable into a network port

It is a serial cable with a reversed pin order, not an Ethernet lead. On a console port it is harmless; between two switch ports it is a fault waiting to happen.

Power over Ethernet

Alternative A powers the data pairs, Alternative B the spare pairs — and 802.3bt uses both at once

802.3af Alternative A power pins on a T568B plug12345678pin 1 on the left, clip facing you
Mode Apins 1–2 positive, 3–6 negative (data pairs)
AlternativePositiveNegativePairs
Alternative A1, 23, 6Data pairs (works at 10/100 and gigabit)
Alternative B4, 57, 8Spare pairs (10/100 only)

Polarity is a convention here

Alternative A powers the data pairs through the center tap of the isolation transformers: pins 1–2 positive, pins 3–6 negative. It works at 10/100 and at gigabit, and it is the only alternative that works at 1000BASE-T on two pairs. The polarity shown is the common convention; an 802.3af/at PSE may apply either polarity, and only 802.3bt pins it down. 802.3af (Type 1, 44–57 V): 15.4 W at the PSE / 12.95 W at the PD, classes 0–3. 802.3at (Type 2, 50–57 V): 30 W / 25.5 W, class 4. 802.3bt Type 3 (50–57 V, 4-pair): 60 W / 51 W, classes 5–6. 802.3bt Type 4 (50–57 V, 4-pair): 90 W / 71.3 W, classes 7–8.
ClassAmendmentPSEPD
0802.3af15.4 W12.95 W
1802.3af4 W3.84 W
2802.3af7 W6.49 W
3802.3af15.4 W12.95 W
4802.3at30 W25.5 W
5802.3bt Type 345 W40 W
6802.3bt Type 360 W51 W
7802.3bt Type 475 W62 W
8802.3bt Type 490 W71.3 W
802.3afPoEType 12-pair
PSE output
15.4 W
At the PD
12.95 W
Voltage
44–57 V DC
Per pair
350 mA

IEEE 802.3af-2003 clauses 33.2 and 33.3

802.3atPoE+Type 22-pair
PSE output
30 W
At the PD
25.5 W
Voltage
50–57 V DC
Per pair
600 mA

IEEE 802.3at-2009 clause 33

802.3bt-type3PoE++ / 4PPoEType 34-pair
PSE output
60 W
At the PD
51 W
Voltage
50–57 V DC
Per pair
600 mA

IEEE 802.3bt-2018 Table 33-11

802.3bt-type4PoE++ / 4PPoE (high power)Type 44-pair
PSE output
90 W
At the PD
71.3 W
Voltage
50–57 V DC
Per pair
960 mA

IEEE 802.3bt-2018 Table 33-11

MPO / MTP polarity

TIA-568.3-D and TIA-604-5 (FOCIS 5) polarity methods A, B and C

Fiber count
Type A — straight

Fiber order is preserved: position 1 reaches position 1, position 2 reaches position 2, and so on through position 12. The connector key is up on one end and down on the other, so when the two ends are mated in an adapter the physical position order reverses — the trunk is straight, the mating is not. Method A therefore needs A-to-B (crossover) duplex patch cords at both ends.

Key orientation
Key up on one end, key down on the other
Duplex method
Method A — Type A straight trunk with A-to-B duplex patch cords at both ends
Fiber position map, Type A, 12 fibers112233445566778899101011111212near endfar end
Type B — reversed

Fiber order is reversed end to end: position 1 reaches position 12, position 2 reaches position 11, and so on. Both connectors are key up, so the reversal comes from the cable itself and straight A-to-A duplex patch cords are used at both ends. This is the simplest method to install and the easiest to get wrong when a Type A cord is substituted.

Key orientation
Key up at both ends
Duplex method
Method B — Type B reversed trunk with A-to-A duplex patch cords at both ends
Fiber position map, Type B, 12 fibers112233445566778899101011111212near endfar end
Type C — flipped pairs

Adjacent positions are flipped in pairs: 1↔2, 3↔4, 5↔6, 7↔8, 9↔10, 11↔12. Both connectors are key up and straight A-to-A duplex patch cords are used at both ends. Type C trunks are the least common of the three.

Key orientation
Key up at both ends
Duplex method
Method C — Type C pair-flipped trunk with A-to-A duplex patch cords at both ends
Fiber position map, Type C, 12 fibers112233445566778899101011111212near endfar end
PositionType A reachesType B reachesType C reaches
11122
22111
33104
4493
5586
6675
7768
8857
99410
101039
1111212
1212111

Read the table as: the fiber entering position n on the near connector leaves at the position shown on the far connector. Type A preserves the order, Type B reverses it, Type C flips adjacent pairs. The 8-fiber map is the same rule over the first eight positions. The highlighted row is position 1 — the transmit position a duplex link depends on.

Ethernet standards

Reaches are the conservative figure where a standard allows a range by fiber grade

PHYSpeedMediumReachEncodingLanesStandard
1000BASE-T1 Gb/sBalanced twisted pair, Cat 5 or better100 m4D-PAM5, 125 MBd over 4 pairs4 pairs, full duplexIEEE 802.3ab-1999
10GBASE-T10 Gb/sBalanced twisted pair, Cat 6A (Cat 6 to 55 m)55 mDSQ128 with Tomlinson precoding, 800 MBd per pair4 pairs, full duplexIEEE 802.3an-2006
10GBASE-SR10 Gb/sMultimode fiber, OM3 300 m / OM4 400 m300 m64b/66b, 850 nm VCSEL1 duplex pairIEEE 802.3ae-2002
10GBASE-LR10 Gb/sSingle-mode fiber (OS2)10 km64b/66b, 1310 nm DFB1 duplex pairIEEE 802.3ae-2002
10GBASE-ER10 Gb/sSingle-mode fiber (OS2)40 km64b/66b, 1550 nm EML1 duplex pairIEEE 802.3ae-2002
25GBASE-SR25 Gb/sMultimode fiber, OM4 100 m (OM3 70 m)70 m64b/66b with RS-FEC (528,514), 850 nm1 duplex pairIEEE 802.3by-2016
25GBASE-LR25 Gb/sSingle-mode fiber (OS2)10 km64b/66b with RS-FEC, 1310 nm1 duplex pairIEEE 802.3cc-2017
40GBASE-SR440 Gb/sMultimode fiber, OM3 100 m / OM4 150 m100 m4 × 10 Gbit lanes, 850 nm8 fibers (MPO-12)IEEE 802.3ba-2010
40GBASE-CR440 Gb/sTwinax copper DAC7 m4 × 10 Gbit lanes over 4 shielded pairs4 shielded pairsIEEE 802.3ba-2010
100GBASE-SR4100 Gb/sMultimode fiber, OM4 100 m (OM3 70 m)70 m4 × 25 Gbit lanes with RS-FEC, 850 nm8 fibers (MPO-12)IEEE 802.3bm-2015
100GBASE-LR4100 Gb/sSingle-mode fiber (OS2)10 km4 × 25 Gbit LAN-WDM, 1295–1310 nm1 duplex pairIEEE 802.3ba-2010
100GBASE-CR4100 Gb/sTwinax copper DAC5 m4 × 25 Gbit lanes with RS-FEC4 shielded pairsIEEE 802.3bj-2014
400GBASE-SR8400 Gb/sMultimode fiber, OM4 100 m (OM3 70 m)70 m8 × 50 Gbit lanes with RS-FEC, 850 nm16 fibers (MPO-16 or 2 × MPO-12)IEEE 802.3bs-2017
400GBASE-DR4400 Gb/sSingle-mode fiber (OS2)500 m4 × 100 Gbit PAM4 lanes with RS-FEC, 1310 nm8 fibers (MPO-12)IEEE 802.3bs-2017

1000BASE-T — Cat 5 works at 100 m but Cat 5e is the practical minimum for a new installation.

10GBASE-T — Reach is 100 m on Cat 6A and 55 m on Cat 6 — and 30 m on Cat 5e. Alien crosstalk, not attenuation, is what shortens Cat 6.

10GBASE-SR — The 400 m OM4 figure assumes a compliant module and clean, low-loss connectors.

10GBASE-ER — Often paired with a dispersion-compensating module or an optical amplifier beyond 40 km.

25GBASE-SR — RS-FEC is mandatory; a port without it will not bring the link up.

40GBASE-CR4 — 7 m is the standard limit; passive assemblies are usually sold at 5 m or less to leave margin.

100GBASE-LR4 — WDM: four wavelengths on each fiber, so only one duplex pair is needed.

400GBASE-DR4 — 500 m, not 10 km. For longer single-mode runs use 400GBASE-FR4/LR4 on a duplex pair.

Cable types

What each assembly is wired for, and when you still need it

AssemblyWiringUsed for
Straight-through (patch)T568B on both ends (or T568A on both ends — never one of each)Host to switch, switch to patch panel, router to switch: any MDI-to-MDI-X link.
CrossoverT568A on one end, T568B on the other (pins 1↔3, 2↔6)Switch to switch, host to host, router to router — anything without MDI-X detection.
Rollover (Cisco console)Reversed end to end: pins 1↔8, 2↔7, 3↔6, 4↔5Cisco (and compatible) RJ-45 console port to a DB-9/DB-25 serial port or USB adapter.
T1 crossoverPins 1↔4, 2↔5 (the two T1 pairs swapped)Back-to-back T1 CSU/DSU units, or a loopback into a T1 interface for testing.
MDI / MDI-X and auto-detectionNot a cable — a port roleMDI (a host, router or uplink) transmits on pins 1, 2; MDI-X (a switch port) transmits on pins 3, 6. A straight-through cable connects MDI to MDI-X.

Breakouts

How many fibers each host port consumes

Host portBecomesFibersConnector
40GBASE-SR44 × 10GBASE-SR8MPO-12 (8 fibers used) → 4 × LC duplex
100GBASE-SR44 × 25GBASE-SR8MPO-12 (8 fibers used) → 4 × LC duplex
400GBASE-SR88 × 50GBASE-SR16MPO-16 APC, or 2 × MPO-12 APC → 8 × LC duplex
400GBASE-DR44 × 100GBASE-DR8MPO-12 APC → 4 × LC duplex

40GBASE-SR4 — The MPO-12 has four unused positions; a 12-fiber trunk still needs the full 12-fiber cable. (IEEE 802.3ba-2010 (40GBASE-SR4), IEEE 802.3ae-2002 (10GBASE-SR))

100GBASE-SR4 — The most common campus breakout. RS-FEC is mandatory on 25G lanes and must be enabled on the host port. (IEEE 802.3bm-2015 (100GBASE-SR4), IEEE 802.3by-2016 (25GBASE-SR))

400GBASE-SR8 — MPO-16 and MPO-12 ferrules are not interchangeable; the APC key and polish differ from the 12-fiber multimode parts. (IEEE 802.3bs-2017 (400GBASE-SR8), IEEE 802.3cd-2018 (50GBASE-SR))

400GBASE-DR4 — Parallel single-mode at 500 m per lane, so the breakout is 4 × 500 m — not 4 × 10 km. (IEEE 802.3bs-2017 (400GBASE-DR4), IEEE 802.3cd-2018 (100GBASE-DR))

Plain-text reference (copy or print)
# T568 pinout
| Pin | T568A | T568B | Signal (10/100 · 1000BASE-T) |
| --- | --- | --- | --- |
| 1 | White / green | White / orange | TX+ / BI_DA+ |
| 2 | Green | Orange | TX- / BI_DA- |
| 3 | White / orange | White / green | RX+ / BI_DB+ |
| 4 | Blue | Blue | unused / BI_DC+ |
| 5 | White / blue | White / blue | unused / BI_DC- |
| 6 | Orange | Green | RX- / BI_DB- |
| 7 | White / brown | White / brown | unused / BI_DD+ |
| 8 | Brown | Brown | unused / BI_DD- |

# Crossover (T568B end → T568A end)
| From pin | Color (T568B end) | To pin | Color (T568A end) | Signal |
| --- | --- | --- | --- | --- |
| 1 | White / orange | 3 | White / orange | TX+ / BI_DA+ |
| 2 | Orange | 6 | Orange | TX- / BI_DA- |
| 3 | White / green | 1 | White / green | RX+ / BI_DB+ |
| 6 | Green | 2 | Green | RX- / BI_DB- |

# Cisco rollover (console)
| RJ-45 pin | Signal | DB-9 |
| --- | --- | --- |
| 1 | RTS | CTS (8) |
| 2 | DTR | DSR (6) |
| 3 | TxD | RxD (2) |
| 4 | GND | GND (5) |
| 5 | GND | GND (5) |
| 6 | RxD | TxD (3) |
| 7 | DSR | DTR (4) |
| 8 | CTS | RTS (7) |

# PoE alternatives
| Alternative | Positive pins | Negative pins | Pairs used |
| --- | --- | --- | --- |
| Alternative A | 1, 2 | 3, 6 | Data pairs (works at 10/100 and gigabit) |
| Alternative B | 4, 5 | 7, 8 | Spare pairs (10/100 only) |

# MPO polarity, 12 fibers
| Position (1–12) | Type A → | Type B → | Type C → |
| --- | --- | --- | --- |
| 1 | 1 | 12 | 2 |
| 2 | 2 | 11 | 1 |
| 3 | 3 | 10 | 4 |
| 4 | 4 | 9 | 3 |
| 5 | 5 | 8 | 6 |
| 6 | 6 | 7 | 5 |
| 7 | 7 | 6 | 8 |
| 8 | 8 | 5 | 7 |
| 9 | 9 | 4 | 10 |
| 10 | 10 | 3 | 9 |
| 11 | 11 | 2 | 12 |
| 12 | 12 | 1 | 11 |

# Ethernet standards
| PHY | Speed (Mb/s) | Medium | Reach (m) | Encoding | Lanes | Standard |
| --- | --- | --- | --- | --- | --- | --- |
| 1000BASE-T | 1000 | Balanced twisted pair, Cat 5 or better | 100 | 4D-PAM5, 125 MBd over 4 pairs | 4 pairs, full duplex | IEEE 802.3ab-1999 |
| 10GBASE-T | 10000 | Balanced twisted pair, Cat 6A (Cat 6 to 55 m) | 55 | DSQ128 with Tomlinson precoding, 800 MBd per pair | 4 pairs, full duplex | IEEE 802.3an-2006 |
| 10GBASE-SR | 10000 | Multimode fiber, OM3 300 m / OM4 400 m | 300 | 64b/66b, 850 nm VCSEL | 1 duplex pair | IEEE 802.3ae-2002 |
| 10GBASE-LR | 10000 | Single-mode fiber (OS2) | 10000 | 64b/66b, 1310 nm DFB | 1 duplex pair | IEEE 802.3ae-2002 |
| 10GBASE-ER | 10000 | Single-mode fiber (OS2) | 40000 | 64b/66b, 1550 nm EML | 1 duplex pair | IEEE 802.3ae-2002 |
| 25GBASE-SR | 25000 | Multimode fiber, OM4 100 m (OM3 70 m) | 70 | 64b/66b with RS-FEC (528,514), 850 nm | 1 duplex pair | IEEE 802.3by-2016 |
| 25GBASE-LR | 25000 | Single-mode fiber (OS2) | 10000 | 64b/66b with RS-FEC, 1310 nm | 1 duplex pair | IEEE 802.3cc-2017 |
| 40GBASE-SR4 | 40000 | Multimode fiber, OM3 100 m / OM4 150 m | 100 | 4 × 10 Gbit lanes, 850 nm | 8 fibers (MPO-12) | IEEE 802.3ba-2010 |
| 40GBASE-CR4 | 40000 | Twinax copper DAC | 7 | 4 × 10 Gbit lanes over 4 shielded pairs | 4 shielded pairs | IEEE 802.3ba-2010 |
| 100GBASE-SR4 | 100000 | Multimode fiber, OM4 100 m (OM3 70 m) | 70 | 4 × 25 Gbit lanes with RS-FEC, 850 nm | 8 fibers (MPO-12) | IEEE 802.3bm-2015 |
| 100GBASE-LR4 | 100000 | Single-mode fiber (OS2) | 10000 | 4 × 25 Gbit LAN-WDM, 1295–1310 nm | 1 duplex pair | IEEE 802.3ba-2010 |
| 100GBASE-CR4 | 100000 | Twinax copper DAC | 5 | 4 × 25 Gbit lanes with RS-FEC | 4 shielded pairs | IEEE 802.3bj-2014 |
| 400GBASE-SR8 | 400000 | Multimode fiber, OM4 100 m (OM3 70 m) | 70 | 8 × 50 Gbit lanes with RS-FEC, 850 nm | 16 fibers (MPO-16 or 2 × MPO-12) | IEEE 802.3bs-2017 |
| 400GBASE-DR4 | 400000 | Single-mode fiber (OS2) | 500 | 4 × 100 Gbit PAM4 lanes with RS-FEC, 1310 nm | 8 fibers (MPO-12) | IEEE 802.3bs-2017 |

# Breakouts
| Host | Lanes | Becomes | Fibers | Connector | Standards |
| --- | --- | --- | --- | --- | --- |
| 40GBASE-SR4 | 4 | 4 × 10GBASE-SR | 8 | MPO-12 (8 fibers used) → 4 × LC duplex | IEEE 802.3ba-2010 (40GBASE-SR4), IEEE 802.3ae-2002 (10GBASE-SR) |
| 100GBASE-SR4 | 4 | 4 × 25GBASE-SR | 8 | MPO-12 (8 fibers used) → 4 × LC duplex | IEEE 802.3bm-2015 (100GBASE-SR4), IEEE 802.3by-2016 (25GBASE-SR) |
| 400GBASE-SR8 | 8 | 8 × 50GBASE-SR | 16 | MPO-16 APC, or 2 × MPO-12 APC → 8 × LC duplex | IEEE 802.3bs-2017 (400GBASE-SR8), IEEE 802.3cd-2018 (50GBASE-SR) |
| 400GBASE-DR4 | 4 | 4 × 100GBASE-DR | 8 | MPO-12 APC → 4 × LC duplex | IEEE 802.3bs-2017 (400GBASE-DR4), IEEE 802.3cd-2018 (100GBASE-DR) |

Frequently asked

What is the difference between T568A and T568B?
Only pins 1, 2, 3 and 6 change: T568A puts the green pair on 1–2 and the orange pair on 3–6, T568B does the opposite. Pins 4, 5, 7 and 8 — the blue and brown pairs — are identical in both schemes.
Do I need a crossover cable?
Usually not. Gigabit and faster ports implement auto-MDI/MDI-X, which detects and corrects a straight-through connection between two like devices. A crossover (pins 1↔3, 2↔6) is only needed on older 10/100 hardware without that feature.
Which PoE pins carry power?
Alternative A superimposes power on the data pairs — pins 1–2 and 3–6 — and works at gigabit. Alternative B uses the spare pairs, pins 4–5 and 7–8, which only exist at 10/100. 802.3bt Type 3 and 4 power all four pairs at once.
What are MPO polarity types A, B and C?
They are three ways of getting position 1 on one end to reach position 2 on the other in a duplex link. Type A is a straight trunk with crossover patch cords, Type B is a reversed trunk with straight patch cords, and Type C flips adjacent fiber pairs.
How far does 10GBASE-T reach?
100 m over Cat 6A, but only 55 m over Cat 6 and 30 m over Cat 5e. Alien crosstalk, not attenuation, is what limits the shorter grades — which is why the reference table publishes the conservative figure.

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