I lost a good two hours the other day on an insufficiently documented device, looking for a way to flash a new firmware onto it.
dmesg was absolutely silent about it when I plugged in or out my C-C USB cable although the device switched on when I was using a simple charger instead. I opened it up to see if there was a special switch or something to put it in firmware flashing mode, to no avail. The little documentation I had only mentioned using one of the USB port.
In the end, out of ideas, I switched cables (even though I knew my cable was perfectly fine). As soon as I plugged in a A-C USB cables, everything worked immediately...
IMO it's a huge failure of the USB-C standard that to a USB 2 only device, a C-C cable looks different to an A-C cable. It's the cause of so many issues of the kind, "it works when I use a different cable" or "it works with this power supply but not that power supply". I understand why something needs the ability to check, but when not doing anything special to detect USB-C capabilities, they should be identical.
> to a USB 2 only device, a C-C cable looks different to an A-C cable
It does not. The vast majority of sinks have absolutely no knowledge of the cable used.
This is literally device engineers not bothering to read any part of the USB-C spec, or intentionally leaving out a $0.0003 part. And no, that's not a typo - I really do mean "50k unit reel for $15".
I know how cheap resistors are. I design PCBs as a hobby and occasionally semi-professionally.
Leaving off parts should result in behavior which is identical whether you connect an A-C cable or a C-C cable. Detecting the difference between them should require adding parts.
There is nothing to detect on the sink side, for basic operation. All the smarts are in the power source.
It's like saying USB cables should still carry 10Gbps data when only the VBUS and GND wires are present, because some AliExpress scammers leave out the data wires: you can't leave out trivial core parts and still expect it to work!
It is needed for basic operation, because unlike with a A-to-B cable, power bricks plugged into a USB-C cable have no way of knowing whether the other side is also a power supply that will short out if you try to feed it power instead of drawing power from it. A couple resistors in the sink is probably the cheapest possible way of signaling this information to the supply. This isn't PD, it's just a basic requirement to allow having the same connector on both ends of the cable.
I don't think you understand the problem. Unlike a USB-A power supply, a USB-C power supply cannot just assume by default that the device you plugged into it is not another power supply. That would risk causing a short and potentially starting things on fire.
I suppose that instead of a $0.01 resistor to request power they could have mandated some kind of (probably more expensive) circuit breaker that detects the short and shuts things off before it causes a fire, but I suspect then instead of broken devices having missing resistors you'd get ones with missing circuit breakers...
It pretty hard (maybe impossible) to design a spec that still works when manufacturers randomly omit critical components for no reason.
All the power source needs is a way to sense that a power sink has been plugged in, as otherwise you could connect two powered sources with each other. Type C makes it about as simple as possible. It's really not the spec's fault.
> if nobody follows the spec, it's the problem in the spec
The vast majority of devices follow the spec. It isn't exactly hard, you know: throw "how do i implement a usb-c port on a device" in Google and its AI summary literally contains all the information you need.
If >99% of engineers have no trouble implementing it, can you really blame the spec?
> why tf does it matter what the other side of the cable is connected to?
Because both sides of a C-C cable have the same plug, and people want it to work properly when any kind of device is attacked to either side. This means using the same cable to connect a wall charger to a smartphone, a smartphone to a laptop, or a laptop to a docking station.
Similarly, they want the same port on a power bank to be be used both to put power into the power bank and to draw power out of it. And when they do something silly like connecting two wall chargers together, they don't want their house to catch fire.
USB-C doesn't provide power by default which is better design than USB-A always providing some power. The device needs to signal that it is a sink with 5.1k ohm resistors so the charger can turn on the power. There is also resistor to signal legacy USB charging to work with USB-A ports.
How is the standard supposed to work with defective devices that don't implement the standard?
> There is also resistor to signal legacy USB charging to work with USB-A ports.
There's no such thing on the device. A power sink with a USB-C receptacle has two 5.1kΩ resistors, one on each CC line. A power sink with a USB-C plug has a single 5.1kΩ resistor. Always. That's it - anything else in on the power source (or cable) side.
You only need to bother with anything more on the sink side once you want to either sense what's the max current provided by the source (which you can do simply by measuring the voltage on CC pins), or implement PD.
I think you corrected me before. Maybe this time it will stick.
I don't understand why the USB-C module that they are using doesn't include the resistors. Then they can replace the microUSB module with USB-C module and have it work.
Because putting a somewhat-precise resistor inside a connector is not trivial, and would likely double the price of the connector due to the increased complexity of manufacturing.
On the other hand: the resistor itself is basically free, and you are already putting a few dozen of them on your final PCB anyways. Adding one more resistor value barely changes the assembly process.
The people who are willing to skimp on USB-C resistors are definitely not going to splurge on a custom drop-in connector module, so it would not solve any real problem. The resistor-less devices are broken because their manufacturers do not care that they are broken. You can't engineer yourself out of that kind of greed and apathy.
The A-C cable is new the mini-usb cable. I keep a couple magic cables in the tool box with a big flag of tape on it so it doesn't disappear into the gyre.
I have a fair number of badly designed / implemented usb-c devices with this problem (not all from fly-by-night companies, my Philips water flosser is a glaring example). I have a couple of small metal-enclosed male C to female C adapters (which don't have an exposed circuit board) that do the same thing as the Adafruit version.
As someone with a bunch of "USB-C" devices that do this, I'd wondered for years why nobody sold these. I recently just found them on Aliexpress in a more finished format (nice-looking case and such), so I'm hopeful they'll start to filter out into the world more. (If you're interested, do a search for "usb c resistor" and you'll find them for ~$2-$4.)
Raspberry Pi 4 had a slightly different problem - they attempted to get away with using just one resistor instead of two, as it allowed them to simplify their voltage-sensing circuit a bit. At a cost of non-compliance and all the issues that came with it, of course, so not a great bet after all.
It would, but it would make the Pi not able to check the power capability of the source.
Note that the Pi's failure mode is different - it does work with C-to-C cables as long as they don't contain e-markers. They tried to be clever and it backfired.
Yeah, I once had similar (with a different purpose, but very alike) boards of my own design produced and paid $22 total for 5 assembled boards, including shipping from China to Europe and all taxes/customs. Unlike this one it had SuperSpeed passthrough too, so you could probably go cheaper :)
$0.50 to get it manufactured somewhere in Asia, $4.00 to get it shipped to the US, tested, packaged, put on a shelf, retrieved for your order, and put in a box to ship your way.
You're not paying for the PCB, you are paying for an American warehouse worker to do their job without having to pee in a bottle and walk around dead coworkers.
I don't buy and return products that don't charge with a single usb-c cable. How can I expect good quality from a product if the maker saves on ¢1 cent? It's 2026 yet new products still keep people from going all usb-c.
I lost a good two hours the other day on an insufficiently documented device, looking for a way to flash a new firmware onto it.
dmesg was absolutely silent about it when I plugged in or out my C-C USB cable although the device switched on when I was using a simple charger instead. I opened it up to see if there was a special switch or something to put it in firmware flashing mode, to no avail. The little documentation I had only mentioned using one of the USB port.
In the end, out of ideas, I switched cables (even though I knew my cable was perfectly fine). As soon as I plugged in a A-C USB cables, everything worked immediately...
IMO it's a huge failure of the USB-C standard that to a USB 2 only device, a C-C cable looks different to an A-C cable. It's the cause of so many issues of the kind, "it works when I use a different cable" or "it works with this power supply but not that power supply". I understand why something needs the ability to check, but when not doing anything special to detect USB-C capabilities, they should be identical.
> to a USB 2 only device, a C-C cable looks different to an A-C cable
It does not. The vast majority of sinks have absolutely no knowledge of the cable used.
This is literally device engineers not bothering to read any part of the USB-C spec, or intentionally leaving out a $0.0003 part. And no, that's not a typo - I really do mean "50k unit reel for $15".
I know how cheap resistors are. I design PCBs as a hobby and occasionally semi-professionally.
Leaving off parts should result in behavior which is identical whether you connect an A-C cable or a C-C cable. Detecting the difference between them should require adding parts.
There is nothing to detect on the sink side, for basic operation. All the smarts are in the power source.
It's like saying USB cables should still carry 10Gbps data when only the VBUS and GND wires are present, because some AliExpress scammers leave out the data wires: you can't leave out trivial core parts and still expect it to work!
> There is nothing to detect on the sink side, for basic operation.
I know. You need the detection for the fancy stuff like PD, not for basic operation.
So why does it matter that a resistor is missing on the sink side? It's stupid.
You already got the answer spelled out several times here in this thread.
It is needed for basic operation, because unlike with a A-to-B cable, power bricks plugged into a USB-C cable have no way of knowing whether the other side is also a power supply that will short out if you try to feed it power instead of drawing power from it. A couple resistors in the sink is probably the cheapest possible way of signaling this information to the supply. This isn't PD, it's just a basic requirement to allow having the same connector on both ends of the cable.
I don't think you understand the problem. Unlike a USB-A power supply, a USB-C power supply cannot just assume by default that the device you plugged into it is not another power supply. That would risk causing a short and potentially starting things on fire.
I suppose that instead of a $0.01 resistor to request power they could have mandated some kind of (probably more expensive) circuit breaker that detects the short and shuts things off before it causes a fire, but I suspect then instead of broken devices having missing resistors you'd get ones with missing circuit breakers...
It pretty hard (maybe impossible) to design a spec that still works when manufacturers randomly omit critical components for no reason.
if nobody follows the spec, it's the problem in the spec
why tf does it matter what the other side of the cable is connected to?
It doesn't.
All the power source needs is a way to sense that a power sink has been plugged in, as otherwise you could connect two powered sources with each other. Type C makes it about as simple as possible. It's really not the spec's fault.
> if nobody follows the spec, it's the problem in the spec
The vast majority of devices follow the spec. It isn't exactly hard, you know: throw "how do i implement a usb-c port on a device" in Google and its AI summary literally contains all the information you need.
If >99% of engineers have no trouble implementing it, can you really blame the spec?
> why tf does it matter what the other side of the cable is connected to?
Because both sides of a C-C cable have the same plug, and people want it to work properly when any kind of device is attacked to either side. This means using the same cable to connect a wall charger to a smartphone, a smartphone to a laptop, or a laptop to a docking station.
Similarly, they want the same port on a power bank to be be used both to put power into the power bank and to draw power out of it. And when they do something silly like connecting two wall chargers together, they don't want their house to catch fire.
USB-C doesn't provide power by default which is better design than USB-A always providing some power. The device needs to signal that it is a sink with 5.1k ohm resistors so the charger can turn on the power. There is also resistor to signal legacy USB charging to work with USB-A ports.
How is the standard supposed to work with defective devices that don't implement the standard?
> There is also resistor to signal legacy USB charging to work with USB-A ports.
There's no such thing on the device. A power sink with a USB-C receptacle has two 5.1kΩ resistors, one on each CC line. A power sink with a USB-C plug has a single 5.1kΩ resistor. Always. That's it - anything else in on the power source (or cable) side.
You only need to bother with anything more on the sink side once you want to either sense what's the max current provided by the source (which you can do simply by measuring the voltage on CC pins), or implement PD.
I think you corrected me before. Maybe this time it will stick.
I don't understand why the USB-C module that they are using doesn't include the resistors. Then they can replace the microUSB module with USB-C module and have it work.
Because putting a somewhat-precise resistor inside a connector is not trivial, and would likely double the price of the connector due to the increased complexity of manufacturing.
On the other hand: the resistor itself is basically free, and you are already putting a few dozen of them on your final PCB anyways. Adding one more resistor value barely changes the assembly process.
The people who are willing to skimp on USB-C resistors are definitely not going to splurge on a custom drop-in connector module, so it would not solve any real problem. The resistor-less devices are broken because their manufacturers do not care that they are broken. You can't engineer yourself out of that kind of greed and apathy.
The A-C cable is new the mini-usb cable. I keep a couple magic cables in the tool box with a big flag of tape on it so it doesn't disappear into the gyre.
I did not know this was a thing.
I have a couple of devices that do not charge on a usb c source. I have to use a USB A - C cable on their shitty usb-c ports.
Now that I know the probable reason I’m more annoyed.
I have a fair number of badly designed / implemented usb-c devices with this problem (not all from fly-by-night companies, my Philips water flosser is a glaring example). I have a couple of small metal-enclosed male C to female C adapters (which don't have an exposed circuit board) that do the same thing as the Adafruit version.
As someone with a bunch of "USB-C" devices that do this, I'd wondered for years why nobody sold these. I recently just found them on Aliexpress in a more finished format (nice-looking case and such), so I'm hopeful they'll start to filter out into the world more. (If you're interested, do a search for "usb c resistor" and you'll find them for ~$2-$4.)
There were some higher profile products that left this out like the original revisions of the raspberry pi 4.
Raspberry Pi 4 had a slightly different problem - they attempted to get away with using just one resistor instead of two, as it allowed them to simplify their voltage-sensing circuit a bit. At a cost of non-compliance and all the issues that came with it, of course, so not a great bet after all.
So it wouldn't work on a pi then?
It would, but it would make the Pi not able to check the power capability of the source.
Note that the Pi's failure mode is different - it does work with C-to-C cables as long as they don't contain e-markers. They tried to be clever and it backfired.
I've fixed this issue by using a Micro-USB to USB-C adapter
Hagibis makes one that isn't a bare PCB. B0GLFGTLW9 on Amazon.com, for me today it's showing $6.99 for a 2-pack.
I hate my Powkiddy retro game console because of this. What's the point of a portable console if it's doesn't work with all the USB-C cable I have?
I'm so annoyed they cheaped out that I don't even plan on buying anything from them again.
2 connectors and a 0.01c PCB for the price of a complete working charger.
You can get five of them for less than $4 total here:
https://a.aliexpress.com/_mtW11kT
Including a cover, which is $2 extra here.
If you need this, it's not the charger that's broken but the device you're plugging into it.
Yes, the point is it's extremely expensive for what it is.
Yeah, I once had similar (with a different purpose, but very alike) boards of my own design produced and paid $22 total for 5 assembled boards, including shipping from China to Europe and all taxes/customs. Unlike this one it had SuperSpeed passthrough too, so you could probably go cheaper :)
That's the cost of Western retail for you!
$0.50 to get it manufactured somewhere in Asia, $4.00 to get it shipped to the US, tested, packaged, put on a shelf, retrieved for your order, and put in a box to ship your way.
You're not paying for the PCB, you are paying for an American warehouse worker to do their job without having to pee in a bottle and walk around dead coworkers.
I don't buy and return products that don't charge with a single usb-c cable. How can I expect good quality from a product if the maker saves on ¢1 cent? It's 2026 yet new products still keep people from going all usb-c.
It's much less than a cent.