add x509 raw parse functionality
parent
27732e63c1
commit
237e3d6b63
7
Makefile
7
Makefile
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@ -11,3 +11,10 @@ clean:
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build:
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@-mkdir ./build
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go build -v -ldflags="-s -w" -o build/certificateapi ${go_files}
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build-docker:
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docker build -t docker.libraryofcode.org/engineering/certificate-api/master .
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run-docker:
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docker run --rm -it docker.libraryofcode.org/engineering/certificate-api/master
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98
README.md
98
README.md
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@ -1,16 +1,16 @@
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# Certificate API
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## Library of Code sp-us | Board of Directors
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*Library of Code sp-us | Board of Directors*
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This is an HTTP API which provides information on the x509 certificates deployed on TLS sites.
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You can self-host this yourself, however you're more than welcome to use the public API at https://certapi.libraryofcode.org/
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### Installation
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## Installation
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Run `make` to build the binary. It'll be installed in `build/certificateapi`. Simply run this executable.
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#### Environment Variables
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### Environment Variables
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By default, the application listens on port `8080`. You can change this by setting the `PORT` environment variable to what you want.
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When running in production, set this environment variable: `GIN_MODE=release`
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### How to Query
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## How to Query Information for Websites
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Send a GET request to `https://certapi.libraryofcode.org` with the query parameter `q` set to equal the site you wish to dial.
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Ex: `https://certapi.libraryofcode.org/?q=www.google.com`
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@ -47,7 +47,95 @@ If the status !== `true`, there will be a message field which displays the error
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publicKeyAlgorithm: string,
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serialNumber: number,
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notAfter: Date,
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extendedKeyUsage: ['All/Any Usages', 'TLS Web Server Authentication', 'TLS Web Client Authentication', 'Code Signing', 'E-mail Protection (S/MIME)'],
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/**
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- 0: KeyUsageCRLSign
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- 1: KeyUsageCertificateSign
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- 2: KeyUsageContentCommitment
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- 3: KeyUsageDataEncipherment
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- 4: KeyUsageDecipherOnly
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- 5: KeyUsageDigitalSignature
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- 6: KeyUsageEncipherOnly
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- 7: KeyUsageKeyAgreement
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- 8: KeyUsageKeyEncipherment
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*/
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keyUsage: number[],
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keyUsageAsText: ['CRL Signing', 'Certificate Signing', 'Content Commitment', 'Data Encipherment', 'Decipher Only', 'Digital Signature', 'Encipher Only', 'Key Agreement', 'Key Encipherment'],
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/**
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- 0: Any/All Usage
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- 1: TLS Web Server Auth
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- 2: TLS Web Client Auth
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- 3: Code Signing
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- 4: Email Protection (S/MIME)
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*/
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extendedKeyUsage: number[],
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extendedKeyUsageAsText: ['All/Any Usages', 'TLS Web Server Authentication', 'TLS Web Client Authentication', 'Code Signing', 'E-mail Protection (S/MIME)'],
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san: string,
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fingerprint: string,
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connection: {
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cipherSuite: string,
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tlsVersion: 'SSLv3' | 'TLSv1' | 'TLSv1.1' | 'TLSv1.2' | 'TLSv1.3',
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},
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}
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```
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## How to Parse PEM-Encoded X509 certificate data
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Submit a POST request to https://certapi.libraryofcode.org/ with the body being the raw/text content of the PEM encoded certificate.
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### Response & Types
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#### Error
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If the status !== `true`, there will be a message field which displays the error.
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```ts
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{
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status: false,
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message: string,
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}
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```
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### 200 | SUCCESS
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```ts
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{
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status: true | false,
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subject: {
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commonName: string,
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organization: string[],
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organizationalUnit: string[],
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locality: string[],
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country: string[],
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},
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issuer: {
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commonName: string,
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organization: string[],
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organizationalUnit: string[],
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locality: string[],
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country: string[],
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},
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validationType: 'DV' | 'OV' | 'EV',
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signatureAlgorithm: string,
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publicKeyAlgorithm: string,
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serialNumber: number,
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notAfter: Date,
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/**
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- 0: KeyUsageCRLSign
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- 1: KeyUsageCertificateSign
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- 2: KeyUsageContentCommitment
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- 3: KeyUsageDataEncipherment
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- 4: KeyUsageDecipherOnly
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- 5: KeyUsageDigitalSignature
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- 6: KeyUsageEncipherOnly
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- 7: KeyUsageKeyAgreement
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- 8: KeyUsageKeyEncipherment
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*/
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keyUsage: number[],
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keyUsageAsText: ['CRL Signing', 'Certificate Signing', 'Content Commitment', 'Data Encipherment', 'Decipher Only', 'Digital Signature', 'Encipher Only', 'Key Agreement', 'Key Encipherment'],
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/**
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- 0: Any/All Usage
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- 1: TLS Web Server Auth
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- 2: TLS Web Client Auth
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- 3: Code Signing
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- 4: Email Protection (S/MIME)
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*/
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extendedKeyUsage: number[],
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extendedKeyUsageAsText: ['All/Any Usages', 'TLS Web Server Authentication', 'TLS Web Client Authentication', 'Code Signing', 'E-mail Protection (S/MIME)'],
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san: string,
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fingerprint: string,
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}
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@ -9,6 +9,8 @@ func main() {
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router := gin.Default()
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router.GET("/", routes.GetCertificateInfo)
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router.GET("/tls", routes.GetCertificateInfo)
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router.POST("/parse", routes.GetCertificateInformationEncoded)
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router.Run()
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}
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153
routes/get.go
153
routes/get.go
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@ -5,18 +5,161 @@ import (
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"crypto/tls"
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"crypto/x509"
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"encoding/hex"
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"fmt"
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"encoding/pem"
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"io/ioutil"
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"net/http"
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"github.com/gin-gonic/gin"
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)
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// GetCertificateInformationEncoded handler function for providing raw data to be parsed
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func GetCertificateInformationEncoded(c *gin.Context) {
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query := c.Copy().Request.Body
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data, err := ioutil.ReadAll(query)
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if err != nil {
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c.JSON(http.StatusBadRequest, gin.H{
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"status": false,
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"message": "Unable to parse body.",
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})
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return
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}
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block, _ := pem.Decode(data)
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if block == nil {
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c.JSON(http.StatusBadRequest, gin.H{
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"status": false,
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"message": "Unable to decode PEM.",
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})
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return
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}
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certificate, err := x509.ParseCertificate(block.Bytes)
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if err != nil {
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c.JSON(http.StatusBadRequest, gin.H{
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"status": false,
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"message": "Unable to parse x509 data.",
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})
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return
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}
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var validationType string
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for _, value := range certificate.PolicyIdentifiers {
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if value.String() == "2.23.140.1.1" {
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validationType = "EV"
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} else if value.String() == "2.23.140.1.2.2" {
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validationType = "OV"
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} else if value.String() == "2.23.140.1.2.1" {
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validationType = "DV"
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}
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}
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keyUsages := []int{}
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keyUsagesText := []string{}
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extendedKeyUsages := []int{}
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extendedKeyUsagesText := []string{}
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for _, value := range certificate.ExtKeyUsage {
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switch value {
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case 0:
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// All Usages
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extendedKeyUsages = append(extendedKeyUsages, 0)
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extendedKeyUsagesText = append(extendedKeyUsagesText, "Any/All Usages")
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break
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case 1:
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// TLS Web Server Authentication
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extendedKeyUsages = append(extendedKeyUsages, 1)
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extendedKeyUsagesText = append(extendedKeyUsagesText, "TLS Web Server Authentication")
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break
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case 2:
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// TLS Web Client Authentication
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extendedKeyUsages = append(extendedKeyUsages, 2)
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extendedKeyUsagesText = append(extendedKeyUsagesText, "TLS Web Client Authentication")
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break
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case 3:
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// Code Signing
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extendedKeyUsages = append(extendedKeyUsages, 3)
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extendedKeyUsagesText = append(extendedKeyUsagesText, "Code Signing")
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break
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case 4:
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// Email Protection
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extendedKeyUsages = append(extendedKeyUsages, 4)
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extendedKeyUsagesText = append(extendedKeyUsagesText, "Email Protection (S/MIME)")
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default:
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break
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}
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}
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if certificate.KeyUsage&x509.KeyUsageCRLSign != 0 {
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keyUsages = append(keyUsages, 0)
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keyUsagesText = append(keyUsagesText, "CRL Signing")
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}
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if certificate.KeyUsage&x509.KeyUsageCertSign != 0 {
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keyUsages = append(keyUsages, 1)
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keyUsagesText = append(keyUsagesText, "Certificate Signing")
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}
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if certificate.KeyUsage&x509.KeyUsageContentCommitment != 0 {
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keyUsages = append(keyUsages, 2)
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keyUsagesText = append(keyUsagesText, "Content Commitment")
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}
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if certificate.KeyUsage&x509.KeyUsageDataEncipherment != 0 {
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keyUsages = append(keyUsages, 3)
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keyUsagesText = append(keyUsagesText, "Data Encipherment")
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}
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if certificate.KeyUsage&x509.KeyUsageDecipherOnly != 0 {
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keyUsages = append(keyUsages, 4)
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keyUsagesText = append(keyUsagesText, "Decipher Only")
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}
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if certificate.KeyUsage&x509.KeyUsageDigitalSignature != 0 {
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keyUsages = append(keyUsages, 5)
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keyUsagesText = append(keyUsagesText, "Digital Signature")
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}
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if certificate.KeyUsage&x509.KeyUsageEncipherOnly != 0 {
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keyUsages = append(keyUsages, 6)
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keyUsagesText = append(keyUsagesText, "Encipher Only")
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}
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if certificate.KeyUsage&x509.KeyUsageKeyAgreement != 0 {
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keyUsages = append(keyUsages, 7)
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keyUsagesText = append(keyUsagesText, "Key Agreement")
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}
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if certificate.KeyUsage&x509.KeyUsageKeyEncipherment != 0 {
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keyUsages = append(keyUsages, 8)
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keyUsagesText = append(keyUsagesText, "Key Encipherment")
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}
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sum := sha1.Sum(certificate.Raw)
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c.JSON(http.StatusOK, gin.H{
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"status": true,
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"subject": gin.H{
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"commonName": certificate.Subject.CommonName,
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"organization": certificate.Subject.Organization,
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"organizationalUnit": certificate.Subject.OrganizationalUnit,
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"locality": certificate.Subject.Locality,
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"country": certificate.Subject.Country,
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},
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"issuer": gin.H{
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"commonName": certificate.Issuer.CommonName,
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"organization": certificate.Issuer.Organization,
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"organizationalUnit": certificate.Issuer.OrganizationalUnit,
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"locality": certificate.Issuer.Locality,
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"country": certificate.Issuer.Country,
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},
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"validationType": validationType,
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"signatureAlgorithm": certificate.SignatureAlgorithm.String(),
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"publicKeyAlgorithm": certificate.PublicKeyAlgorithm.String(),
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"serialNumber": certificate.SerialNumber.Int64(),
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"notAfter": certificate.NotAfter,
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"keyUsage": keyUsages,
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"keyUsageAsText": keyUsagesText,
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"extendedKeyUsage": extendedKeyUsages,
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"extendedKeyUsageAsText": extendedKeyUsagesText,
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"san": certificate.DNSNames,
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"fingerprint": hex.EncodeToString(sum[:]),
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})
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}
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// GetCertificateInfo handler
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func GetCertificateInfo(c *gin.Context) {
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query := c.Query("q")
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resp, err := tls.Dial("tcp", query+":443", &tls.Config{})
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if err != nil {
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fmt.Println(err)
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c.JSON(http.StatusBadRequest, gin.H{
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"status": false,
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"message": "Could not establish connection with server.",
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@ -96,15 +239,15 @@ func GetCertificateInfo(c *gin.Context) {
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keyUsagesText = append(keyUsagesText, "Certificate Signing")
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}
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if certificate.KeyUsage&x509.KeyUsageContentCommitment != 0 {
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keyUsages = append(keyUsages, 3)
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keyUsages = append(keyUsages, 2)
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keyUsagesText = append(keyUsagesText, "Content Commitment")
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}
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if certificate.KeyUsage&x509.KeyUsageDataEncipherment != 0 {
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keyUsages = append(keyUsages, 4)
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keyUsages = append(keyUsages, 3)
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keyUsagesText = append(keyUsagesText, "Data Encipherment")
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}
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if certificate.KeyUsage&x509.KeyUsageDecipherOnly != 0 {
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keyUsages = append(keyUsages, 5)
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keyUsages = append(keyUsages, 4)
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keyUsagesText = append(keyUsagesText, "Decipher Only")
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}
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if certificate.KeyUsage&x509.KeyUsageDigitalSignature != 0 {
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