Automatically add Non-Default Private Keys SSH Authentication Agent - ssh

For convenience purposes I don't have a "default" private key, usually ~/.ssh/id_rsa, ~/.ssh/id_dsa or ~/.ssh/identity. I have multiple keys to manage multiple accounts, one for work and one for personal. I use SSH agent forwarding to get proper authentication. It all works just fine.
The problem I have is after every logoff/reboot, the SSH agent does not automatically add the my keys because, it seems, it only looks for the default named keys, as stated by GitHug at: Error: Permission denied (public key): Make sure you have a key that is being used.
Is there a way to define what keys the SSH agent should automatically add upon loading or will I have to manually add them each time? Possibly create a script that opens upon logon and adds them.

Related

Let gitolite use automatically LDAP pub keys

All the public keys of our users are in our LDAP. Gitolite already gets the usernames and groups out of this LDAP. But for each new user, we have to manually add the userkey to the keydir of gitolite.
Is there a way of letting gitolite automatically get the keys directly from LDAP?
the gitolite gets the users from the authorizedkyes file. This file is generated when you add a new public key to the keys folder.
You have to configure your ssh to use external command for authorized keys file. From OpenSSH 6.1 you can use AuthorizedKeysCommand (for the external command) and AuthorizedKeysCommandUser (under the id the command will run). You have to write your own script or adjust one from the internet to provide the proper output. The command takes one option (uid) and give back the list of public keys ot the user.
If you check the authorized keys of the gitolite it looks more advanced.
command="/usr/share/gitolite/gl-auth-command username",no-port-forwarding,no-X11-forwarding,no-agent-forwarding,no-pty ssh-rsa AAAAB3Nza
So you have to adjust your script to generate such an output if the user match with your gitolite user (normally git or gitolite).

Login to server using WinSCP.com (cmd line) without password

I am using Windows machine and I have WinSCP installed.
I am writing a script that logs in to the server and downloads file.
I do not want to store account password in the script. Is there anyway I can login to server with some-kind of host-key or private-key or something.
Yes, you can use the public key authentication. But for that you still have to store the private key along with your script. Normally the key is encrypted with a passphrase. To automate the login, you would have to store the passphrase to the script file anyway (using the -passphrase switch). So still, if anyone gets an access to your machine, he/she is still able to steal your identity, just as with the password. Though there's an advantage. You can have multiple keys (while only one password). If you use a special key for the script and the key is ever compromised, you can revoke it, while keeping the other keys.
Note that, if you are not absolutely sure of the physical and electronic security of the system on which you are connecting, there's hardly any way to setup an automatic authentication. If you are sure about the security, storing password in the script file is just ok.
Anyway, your question is mostly duplicate of:
How do I setup Public-Key Authentication?
For WinSCP specifics, see the guide to Setting up SSH public key authentication.
See also the WinSCP guide to Protecting credentials used for automation.
I had a similar issue on windows so I used Putty instead http://www.chiark.greenend.org.uk/~sgtatham/putty/download.html
If you need to generate a public key then use: http://the.earth.li/~sgtatham/putty/latest/x86/puttygen.exe
I gave the public key + password to whoever owned the SFTP server to install it on his side.
I saved the private key on my side lest say on "C:\privatekey.ppk"
You don't use password on your script but you link to the private which you must have on you machine.
Then, when you want to automate a batch to download from the FTP server the Pageant in order to load the private key into session http://the.earth.li/~sgtatham/putty/latest/x86/pageant.exe
Then use the PSFTP to connect and perform actions http://the.earth.li/~sgtatham/putty/latest/x86/psftp.exe
So here is sample code for the batch file:
!--Loading the key to session--!
#C:\pageant.exe "C:\privatekey.ppk"
!--Calling the PSFTP.exe with the uaser and sftp address + command list file--!
#C:\psftp user#your.server.address -b C:\sftp_cmd.txt
Command list file (sftp_cmd.txt) will like like this:
mget "*.*" !--downloading every thing
!--more commands can follow here
close
Now, all you need to to schedule it in scheduled tasks *I wish it was simple as unix's cron job....

How does the GitHub authentification work?

If you follow the GitHub HowTo "Generating SSH Keys", you get three files in your ~/.ssh directory: known_hosts, id_rsa, and id_rsa.pub.
The file known_hosts is used for the server authentication, id_rsa is used for the client authentification (here is an article, that explains the difference).
Why should I create / why GitHub does need both -- a host and a user authentification files? How does the GitHub authentification work?
Thx
This is just plain old SSH authentication; nothing about it is specific to GitHub.
id_rsa and id_rsa.pub are the two halves of your key: the private key and the public key. Effectively, the public key is the lock for the private key. You put the lock (public key) on whatever servers you want easy access to, without too much worry that someone else will see it, because it's just a lock. You keep the (private) key on your machine, and use it to log into those servers; they see you have a key fitting the lock, and let you in.
(Not to say that you should put your public key on completely untrustworthy machines; there are malicious tricks that can take advantage of shortcuts like ssh -A.)
known_hosts doesn't actually have much to do with this; it's just where ssh stores the fingerprints of all the servers you've connected to, so it can throw up a big scary warning if the fingerprint changes. (That would mean it's not the same machine: either something has changed radically on the server side, or your connection has been hijacked.)
So, anyway, one of the protocols Git itself understands is SSH. When you use git#github.com:... as a repository URL, Git is just connecting over SSH. Of course, GitHub doesn't want you mucking around on their machines, so they only let you do Git things, not get a full shell.
As usual, the Arch wiki has a whole lot more words on this.
known_hosts stores the server's identity the first time you connect, so that you know the next time that you're connecting to the same server. This prevents someone from pretending to be the server the next time you connect (but sadly not the first time)
id_rsa is your secret key that proves that you are really you. Never give this away.
id_rsa.pub is the public key, its purpose for authentication is basically just to prove that you have the secret key without giving it out. This key you can give to anyone what needs it since there's nothing secret about it.
When you connect to the server, SSH first checks that the server has the correct key (ie it should match the one in known hosts. If the client is comfortable that the server is genuine, it uses its private key to sign the following data and sends it to the server;
string session identifier
byte SSH_MSG_USERAUTH_REQUEST
string user name
string service name
string "publickey"
boolean TRUE
string public key algorithm name
string public key to be used for authentication
The server verifies the signature using the public key (which you earlier uploaded to Github), and if it is correct, the client is authenticated.
The known_hosts file is used by ssh whenever you actually connect to a host via SSH. It stores a signed key of sorts for the server. Then, if it changes, you will know.
ssh-keygen -t rsa -C yourgithub#accountemail.com is used to generate the SSH key in which you will give the id_rsa.pub to github. Then, when you connect to github you have the private key id_rsa in your ~/.ssh folder which is then used to validate your information with github.
This is a very low-level explanation, but the private key (non .pub) file is your end, the .pub is for github and the known_hosts is for your box to know what is what.
You can also generate a config file in ~/.ssh for use to specify which key goes to which host..
authorized_keys and known_hosts are entirely different..
Your SSH server (sshd, ie) uses authorized_keys, or whatever file is defined within your /etc/ssh/sshd_config/ for knowing the public side of another key. So when a user connects to your server, they pass their private key, your SSH server verifies against the public key it has within authorized_keys and if it doesn't match, it doesn't work.
Github maintains an authorized_keys so-to-speak on their users. Your public key goes into your authorized_keys on your account and then when you connect via ssh to clone,push,etc, it checks your private key you send over with your public key they already know.

ssh-keys generation issue for dynamic-ip changing workstations for Gitolite usage

I want to use Gitolite for Git access control.
My question is on ssh keygen for dynamic IP changing workstations. So, do I need to generate ssh keys every time whenever my IP changes. This going to be tedious work for all developers as they use laptops and they need to generate keys and push to Gitolite repo.
Is there any workaround or some other solutions for this ssh public keys generation problem for Gitolite use?
Key generation has nothing to do with IP address from the client perspective.
When you generate an SSH key-pair, for lack of a better analogy, you're generating some files which contain really long numbers which can be used to encrypt or decrypt things. The private key is stored in .ssh/id_rsa (for an RSA key) and the public key is stored in .ssh/id_rsa.pub
You can move that key pair to any machine you wish. You should make sure that the private key is always well protected. The public key, you can give to anyone or copy it wherever you like. It's public. You can also have multiple keys on a machine, with different keys used for different hosts. This is controlled by a .ssh/config file. However, most users don't need that, and stick with a single key pair.
Specifically in the case of gitolite, you'll be storing the public keys of your users in the gitolite-admin/keys directory.
In any case, the fact that your laptop's IP address is changing will have no effect on your keys.

Sharing SSH keys

I use a private SSH key and passwordless entry for a number of user accounts on a server that hosts a number of websites.
I use the same private key for each user account. (because I'm lazy? or is that the "right" way).
I now want to authorise another trusted computer in a different part of the country. If I copy the contents of my ~/.ssh onto that machine will that work without any other set up?
Will both machines be able to maintain a connection at the same time?
Update: as an additional security recommendation, you should generate a new set of keys for a new machine and send your new public key out to the various hosts you use it on, rather than copying your private keys. If you're just moving everything to a new computer however, you can take your keys with you, but remember to destroy them securely on the old computer.
The correct answer is to copy your .ssh directory from the old machine to the new. This part is easy (scp -r .ssh user#newmachinehost:~ will do fine—or you can type the keys in character-by-character, up to you).
BUT—I think the missing link to answer this question is what you have to do after you copy your private keys to the new machine.
I had to run the following for each key (I have 3 separate keys for various organizations)
ssh-add .ssh/[key-filename]
If the filename argument is omitted, id_rsa is assumed.
Once you do this to each key (and enter they key's passphrase if required; it will prompt you), ssh will be able to use those keys to authenticate.
Otherwise, no amount of copying will do much. SSH will ignore the keys in .ssh until they are explicitly used (via ssh -i [keyfilename] ...).
This should work, and both machines should be able to maintain a connection at the same time - I've had to copy my ~/.ssh directory a few times before when hard drives have crashed.
Copying ~/.ssh between systems is fine so long as it's limited to just files like authorized_keys, config, and known_hosts. If you want two hosts to be able to access each other, each host needs its own private SSH key, which must then be added to the other host's authorized_keys file.
It is not a good idea to copy private keys across systems!
Think of real world secrets. Each person who learns the secret increases the chance of it being revealed.
Every time you copy your private key to a new system, you increase your risk of exposure because copied private keys are less secure than the weakest system they live on (because the other systems aren't invulnerable either).
If your laptop gets stolen, you need to revoke all private keys (and saved passwords) that were stored there. This becomes problematic when the only way to log into servers is with that very key. You'd better remember to generate a new key on your desktop and install it on each system you revoke the old key from!
Now consider your desktop gets hacked and somebody steals your private key without your knowledge. Perhaps you had shared this key between your work laptop and your personal desktop, but your desktop doesn't really need access to your work system (because you have good work/life balance). That attacker can now access your work system even without having compromised your laptop. The infosec team at work forces you to hand over your laptop so they can audit it, but after a week of analysis, they find nothing. Not so fun.
These may seem far-fetched and unlikely, especially if you're not a prime target (e.g. an executive or sysadmin), but it's just a good practice, especially given how easy it is to create new keys for each system and install their public keys on each appropriate server. (Consider one of the myriads of config/dotfile propagation systems if this seems daunting.)
Additionally, it means you'll upgrade the security of each key to meet the standards as they improve. As you retire old systems and remove their keys, you rotate out their weaker keys. (And if some trash picker finds your old laptop and undeletes your keys, they won't grant any access.)
This is secure so long as you don't share you private key. Just place the public key in the remote machine's ~/.ssh/authorized_keys file for passwordless entry. Don't share the private key though.
The keys are just for authentication. You can log on as many times as you wish with the same key, so long as you can log on with that private key once.