Showing posts with label web. Show all posts
Showing posts with label web. Show all posts

Friday, November 23, 2018

Getting Started with GraphQL and Express

Interested in learning a lot more about GraphQL? Get a deep dive with The Road to GraphQL 

You can employ GraphQL in your Express server using a middleware. If you get a request that goes to the endpoint POST /graphql, it will pass through the GraphQL Express middleware and handle the response for you.

Installing Packages


npm install express express-graphql graphql

The first package is for the Express server. You might already have that.

The second package is the Express GraphQL middleware.

The third package allows us to use GraphQL constructs in Nodejs.

Setting Up


const express = require('express');
const graphqlHTTP = require('express-graphql');

const schema = require('./schema');

const app = express();
const PORT = 3000;

app.use('/graphql', graphqlHTTP({
  schema: schema
}));

app.listen(PORT, () => {
  console.log(`Server running at port ${PORT}`);
});

The express-graphql middleware requires an Express app. You apply the middleware using app.use(). The first argument is the endpoint where GraphQL will be listening. The code above uses the standard /graphql route. The second argument calls on the middleware with a schema property that can be defined in a separate file:

// schema.js
const {
  GraphQLObjectType,
  GraphQLSchema,
  GraphQLString,
} = require('graphql');

const RootQueryType = new GraphQLObjectType({
  name: 'RootQueryType',
  fields: {
    fruit: {
      type: GraphQLString,
      resolve() {
        return 'Banana';
      }
    }
  }
});

module.exports = new GraphQLSchema({
  query: RootQueryType
});

The GraphQL schema is defined using an object with the query property. That will be the entry point for the queries requested by the client. Under fields, you can specify different types of resources you can query. In the example, we add a field called "fruit" that corresponds to a resource for a fruit and will always return the string "Banana."

You will likely start off creating a new GraphQLObjectType. Then, you define the name and fields properties. For the name, you can call it after the resource type. Each field has a type and a resolve() method that tells GraphQL how to find that resource and return it to the client. There are different types depending on the data type you are using. For example: GraphQLInt, GraphQLList, GraphQLString, etc.

Testing Queries with GraphiQL

GraphiQL Running on Localhost 3000 graphql

It might be helpful, especially if you don't have a frontend to work with, to use the GraphiQL tool to test queries on the browser. To enable it, add the graphiql property when you apply the middleware:

app.use('/graphql', graphqlHTTP({
  schema: schema,
  graphiql: true
}));

With that, you can now access http://localhost:3000/graphql in your browser and it will open up a GraphiQL interface. You can try queries out there. For example, try the following:

query {
  fruit
}

You should expect the following response:

{
  "data": {
    "fruit": "Banana"
  }
}


Creating a Custom Type


Having only one field is uninteresting and does not show the true power of GraphQL. Let us turn out fruit into an object with the following properties: id, name, description, isTasty, calories. You can isolate that FruitType in a different variable:

const {
  GraphQLBoolean,
  GraphQLID,
  GraphQLInt,
  GraphQLObjectType,
  GraphQLSchema,
  GraphQLString,
} = require('graphql');

const FruitType = new GraphQLObjectType({
  name: 'FruitType',
  fields: {
    id: {
      type: GraphQLID
    },
    name: {
      type: GraphQLString
    },
    description: {
      type: GraphQLString
    },
    isTasty: {
      type: GraphQLBoolean
    },
    calories: {
      type: GraphQLInt
    }
  }
});

You can create the new type using a new GraphQLObjectType. Then you define a name property. Then you define a list of fields the object will have. For each field, the property is the field name and the value an object with the type property. Notice how we used different kinds of GraphQL built-in types.

Updating the Root Query


Once you defined your own FruitType, your RootQueryType then becomes like this:

const RootQueryType = new GraphQLObjectType({
  name: 'RootQueryType',
  fields: {
    fruit: {
      type: FruitType,
      resolve() {
        return {
          id: '507f1f77bcf86cd799439011',
          name: 'Banana',
          description: 'This fruit is delicious',
          isTasty: true,
          calories: 121
        };
      }
    }
  }
});

Notice how the type of fruit is no longer just a GraphQLString. It is now a FruitType, which happens to be a GraphQLObjectType.

The resolver method is also changed to reflect the new data structure for a Fruit. Typically, you would make a database call (e.g. via ORM) or an API call with an HTTP request in the resolve() method; then the data value for the specific resource would be returned. The resolve() method takes care to unwrap promises if you do provide them as the return value, so do not worry about doing that yourself.

One interesting thing to notice is the GraphQLID assumes the id property is a string, so be aware of that. You can check out the documentation for all the different GraphQL types here.

Trying a New Query


Now you can try the following query in GraphiQL in your browser:

query {
  fruit {
    id
    name
    description
    isTasty
    calories
  }
}

To which you will get the following response:

{
  "data": {
    "fruit": {
      "id": "507f1f77bcf86cd799439011",
      "name": "Banana",
      "description": "This fruit is delicious",
      "isTasty": true,
      "calories": 121
    }
  }
}

With GraphQL, you do not need to always get back all the fields from a resource. GraphQL allows you to ask only for the data you really need.

For example, the fruit object above does not have many fields, but a real world example would likely contains many, many fields.

Many times the client ends up not using all of the fields, so there is a lot of bandwidth waste. Users with a slow mobile connection would have to wait longer to download the larger set of data, only to end up using only part of it.

Other times, you end up not having enough data, so have to make additional requests to retrieve the missing parts.

GraphQL allows you to ask specifically for all the fields you are going to need to use in the client side. No more, no less. So you could just ask for the fruit id and name if you do not care about its description, nor if it is tasty, nor the calorie count:

query {
  fruit {
    id
    name
  }
}

And GraphQL will give you just that:

{
  "data": {
    "fruit": {
      "id": "507f1f77bcf86cd799439011",
      "name": "Banana"
    }
  }
}

Isn't that wonderful? :)

Read The Road to GraphQL to deep dive into the world of GraphQL!

Sunday, December 11, 2016

JavaScript: Stop Using var with ES6

Want to learn more about JavaScript? Get the Eloquent JavaScript.

With the advent of ES6, two new keywords for the definition of variables have come forth: const and let. Now, whenever you need to define a variable, don't use var -- start off with const.

// The old way
var name = "Angela";

// The new way
const name = "Angela";

Once you assign the value of a const variable once, it can not be changed later. In case you are going to modify the variable's value again, you can use let. This is very common with, say, a for loop:

for (let i = 0; i < someArray.length; i++) {
  // do something
}

In the loop above, the index variable i will have to be changed at every iteration, so we cannot just use const.

Keep in mind things like an array can be added elements even though you use const:

const pets = [];

pets.push("cat");
pets.push("dog");

console.log(pets); // => ["cat", "dog"]

The above is totally fine using const because the array reference was assigned only once. Adding elements to the array does not change the location of that reference. However, reassigning pets to a totally new array would give you an error using const. In that case, you would need to use let:

const pets = [];
pets = ["hamster"]; // error: Assignment to constant variable

let pets = [];
pets = ["hamster"]; // fine because pets was declared with let

Another very interesting aspect of using let in a for loop is that the variable declared within the loop header will only be available to the instructions in the loop body. To illustrate that, consider the following example, using var:

for (var j = 0; j < 3; j++) {
  console.log(j);

}

console.log('-----'); // separator


console.log(j); // no problem here!

The code output will be the numbers 0, 1, 2; then the console.log will print 3. Note that the value of j was available even outside of the loop body that is between the curly braces for the for loop. Now, if you use let, things change:

for (let i = 0; i < 3; i++) {
  console.log(i);
}

console.log('-----'); // separator

console.log(i); // error: i is not defined

The output will be 0, 1, 2, and then an error will occur. That is because i is not defined outside the loop body. Using the let keyword, your variable will have local block scope, but not outside the area defined by the curly braces!

In conclusion, you should always start off declaring your variables with const. Then, if you later need to modify its value more than once, you can easily change the keyword const to let and everything will be fine! Also watch out for the scope rules regarding the new ES6 keywords, since they have block-level scope and will not be available anywhere outside the block. :)

For further reference, see:

https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Statements/const

https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Statements/let

Learn more about JavaScript with the Eloquent JavaScript.

Tuesday, June 28, 2016

Ruby Hashes

Need a reference text for the Ruby programming language? Get the Well-Grounded Rubyist.

An important data structure in Ruby is the hash. Hashes is a data structure of key-value pairs. In other programming languages, it might be called a dictionary or an associative array. If you know JavaScript, Ruby hashes are very similar to Objects. Let us take a look at the most basic aspects of Ruby hashes.

Creating a Hash

You can create a hash using literal notation, with curly braces:

hash = {}

The above is very similar to creating empty arrays, except for hashes you have to use curly braces.

Populating the Hash

To populate the hash, you can use bracket notation. Let us say we want to keep track of a todo list and use the key as the day of the week and the value as what we need to do. Populate the hash for Monday as so:

todo = {}
todo[:monday] = "clean the dishes"

Verify the contents of the hash:

=> {:monday=>"clean the dishes"}

A hash is a data structure of key-value pairs, so in the code above, we are associating the key :monday with the value "clean the dishes." One thing to notice is that we are using a symbol as the key. You could have used a string as the key, but it is common to use symbols as the key to Ruby hashes. Generally, using symbols will speed things up, as ultimately a string key will eventually (and internally) be converted to a symbol anyway.

Let us add one more todo to the hash:

todo[:wednesday] = "karate practice"

Now, the contents of the hash are:

=> {:monday=>"clean the dishes", :wednesday=>"karate practice"}

Hashes are represented using curly braces, with each key-value pair separated by a comma. The mapping between a key and a value is represented using the rocket or arrow symbol =>.

In general, you could have the key or value as any kind of object, not just a string or a symbol. For instance, you could use an integer as the key, but this would seem much like an array. You could also use, say, an array as the value to a certain key. That is perfectly fine in Ruby.

Accessing Nonexistent Key-Value Pairs

Now, what happens if you try to access a key for which the key-value pair does not exist?

=> {:monday=>"clean the dishes", :wednesday=>"karate practice"}

todo[:friday]
=> nil

The answer is nil. If you try to access a key for which there is not value associated with it, you will get nil. This behavior, however, can be changed if you create a new hash using new and then give it an argument for the default value. For instance:

todo = Hash.new
=> {}
todo[:tuesday]
=> nil

The above creates a new hash using Hash.new instead of using just {}. That results in the same outcome. When you try to refer to a key that points to no value, you get nil. Now, if you give new a default value:

todo = Hash.new("DOES NOT EXIST")
=> {}
todo[:tuesday]
=> "DOES NOT EXIST"

todo
=> {}

In the case above, whenever you try to access some key that does not have an associated value, you will get the string "DOES NOT EXIST", because you told Hash.new that that would be the default value in that situation. Mind, however, that the actual hash is still empty even though you got back "DOES NOT EXIST."

Creating a Hash with Initial Key-Value Pairs

So far we had to create a hash from scratch and add key-value pairs one by one. You could also have defined a hash with initial key-value pairs like so:

todo = { :monday => "clean the dishes", :wednesday => "karate practice" }

You can access the value to which a key points to using bracket notation and passing the key as the parameter:

todo[:monday]
=> "clean the dishes"

todo[:wednesday]
=> "karate practice"

Alternative Notation

There is an alternative notation to write hashes. If you are familiar with JavaScript, this will look just like writing JavaScript objects. Given the following definition:

todo = { :monday => "clean the dishes", :wednesday => "karate practice" }

Remove the arrow => and move the colon from the left-hand side of the symbol name to its right-hand side:

todo = { monday: "clean the dishes", wednesday: "karate practice" }

One thing to keep in mind is that you can only use that notation if the key is a symbol. Also, internally, hashes are still represented using the => notation:

todo
=> {:monday=>"clean the dishes", :wednesday=>"karate practice"}

Hash Size and Searching the Hash for Existence of Key/Values

You can find out how many key-value pairs there are in the hash using the size method:

todo
=> {:monday=>"clean the dishes", :wednesday=>"karate practice"}

todo.size
=> 2

Two useful methods to determine the existence of a certain key or certain value are: has_key? and has_value?

Here is an example:

todo.has_key? :monday
=> true

todo.has_key? :tuesday
=> false

Because we have :monday as one of the keys in the todo hash, we get true. However, the hash does not have the key :tuesday, so we get false for that.

Similarly, you can check whether some value is present in the hash:

todo.has_value? "wash the car"
=> false

todo.has_value? "clean the dishes"
=> true

There are many other useful methods that you can find in the Ruby documentation. So check it out

Hashes as the Last Argument to Methods

Say we have a method like so:

def greeting(name, hash)
  puts "Hello, #{name} !"
end

greeting("James", {})

Output:

Hello, James !

The method will simply say Hello followed by whatever name you give as the first argument. For the second argument, I just passed in an empty hash. Let us work with that hash next:

def greeting(name, hash)
  puts "Hello, #{name} !"
  puts "It seems that you have to #{hash[:monday]} on Monday"
end

greeting("James", { :monday => "wash the car" })

Output:

Hello, James !
It seems that you have to wash the car on Monday

So we passed a hash as an argument to greeting. That method then took the value in the hash whose key is :monday and used it to display a message about what the person needs to do.

Now that you understand what the method does, let us get to the point: if the last argument to a method call is a hash, you can omit the curly braces:

greeting("James", :monday => "wash the car")

You will see that a lot. Furthermore, you can also use the alternative notation:

greeting("James", monday: "wash the car")

To me, that looks a lot better. But you have to watch out for what it really means! That is just a hash in disguise. Keep in mind that because the hash is the last argument to the method call, you can omit the curly braces. And then you can also use the alternative notation, because the key is a symbol. It does not matter how many key-value pairs the hash has, the following would be totally okay too:

greeting("James", monday: "wash the car", tuesday: "do the laundry")

Fetch versus Bracket Notation to Retrieve a Value

Given the example:

todo
=> {:monday=>"clean the dishes", :wednesday=>"karate practice"}

You already know that to access a hash's value, you have to give the key within the square brackets:

todo[:monday]
=> "clean the dishes"

You can achieve the same outcome using the fetch method:

todo.fetch(:monday)
=> "clean the dishes"

But is there any difference at all? Consider the case where the key does not exist (i.e. no such key-value pair exists in the hash)

todo[:friday]
=> nil

todo.fetch(:friday)
KeyError: key not found: :friday
from (irb):63:in `fetch'
from (irb):63
from /usr/bin/irb:12:in `<main>'

While using bracket notation returns nil for a key that does not map to any value, using the fetch method will actually raise an exception! Let us go back to our example with the greeting method:

def greeting(name, hash)
  puts "Hello, #{name} !"
  puts "It seems that you have to #{hash[:friday]} on Monday"
  p hash[:friday]
end

greeting("James", { :monday => "wash the car" })

I changed the hash key in the greeting method to :friday (which does not have an associated value) and added a p statement to check the value of hash[:friday]. The output is:

Hello, James !
It seems that you have to  on Monday
nil

Now, if we use fetch instead:

def greeting(name, hash)
  puts "Hello, #{name} !"
  puts "It seems that you have to #{hash.fetch(:friday)} on Monday"
  p hash[:friday]
end

greeting("James", { :monday => "wash the car" })

Output:

Hello, James !
KeyError: key not found: :friday
from (irb):80:in `fetch'
from (irb):80:in `greeting'
from (irb):84
from /usr/bin/irb:12:in `<main>'

When we used bracket notation, the program kept executing and whenever we tried to access an unexistent key, we just got nil and things were just fine. But when we used fetch, it raised a KeyError exception and halted program execution right away. That is the difference between fetch and [] notation: the former raises an exception while the latter only returns nil. If you use fetch, make sure to rescue the exception and do something about it; otherwise, your program will come to a halt and stop. With bracket notation, the program will still keep going, even though having nil in certain places might have undesired effects in what you are trying to do. So handle the nil as well! :)

Conclusion

Ruby hashes are an important data structure that allows you to store data in key-value pairs. Make sure to understand them well, play with irb and make your own hashes. Try doing crazy things with it. Give it different kinds of keys and values and see what you get. Try accessing something that does not exist. Have fun! :)

Looking for a reference text for Ruby? Get the Well-Grounded Rubyist.

Monday, June 27, 2016

Ruby Arrays

Need a reference text for the Ruby programming language? Get the Well-Grounded Rubyist.

You can use arrays to group similar data into a single entity, instead of having to create multiple variables just to separate that same kind of data. Ruby makes it really convenient for you to work with arrays: you can use bracket notation to access and set elements and use stack/queue-like methods to manipulate its data (i.e. push, pop, unshift, shift). Furthermore, you can easily go through an array and use that data in some form using iterators like each, map, select, and reject.

Creating an Array

You can either create an empty array or start it off with a few elements. To start off from scratch, you can use the [] empty array:

animals = []

Then, you would populate the array with elements using the operations we will learn later.

Otherwise, you can just initialize it with some elements:

animals = ["dog", "cat", "bear", "horse", "eagle"]

Arrays are denoted within brackets and have to be comma-separated. The array above is an array of strings and has 5 elements. Although we used strings above, you could use just about any data type because Ruby allows for arrays to have a mix of different types. For example, the following would be okay too:

array = [12, "dog", 3, "cat", 4.65, 0, "eagle"]

The above is an array of mixed data types -- it has integers, floats, and strings.

Accessing Elements

Coming back to our animals example, we can access each element using bracket notation:

animals = ["dog", "cat", "bear", "horse", "eagle"]

animals[0] is the first element of the array ("dog")
animals[4] is the last element of the array ("eagle")

To access elements in an array, you start counting from zero: so the first element will be at position 0 and the last element will be at position given by the size of the array MINUS one. In the case above, we have a 5-element array, so the position of the last element is 5 - 1, which is 4.

You can determine the size of the array in Ruby using the length or size method:

animals.size 
animals.length

They both return the same thing and will give you the number of elements in the array.

Modifying Array At the End

You can add new elements to the end of the array using the push method:

animals = ["dog", "cat", "bear", "horse", "eagle"]

animals.push("pigeon")

=> ["dog", "cat", "bear", "horse", "eagle", "pigeon"]

Note how the new element "pigeon" was added to the end of the array. This is like a stack for those of you familiar with basic data structures.

To remove an element from the end of the array, you can use pop:

animals = ["dog", "cat", "bear", "horse", "eagle"]

animals.pop
=> "eagle"

=> ["dog", "cat", "bear", "horse"]

Ruby gives you the popped element as the return value from the pop method, you can do something with that. The element is removed from the end of the array, though.

Modifying the Array At the Beginning

There are two other methods that allow you to add/remove elements from the beginning of the array instead of at the end: they are unshift and shift.

You can use unshift to add an element to the beginning of an array:

animals = ["dog", "cat", "bear", "horse", "eagle"]

animals.unshift("dinosaur")

=> ["dinosaur", "dog", "cat", "bear", "horse", "eagle"]

The new element has been added to the front of the array. This is like a queue for those of you familiar with basic data structures.

If you want to remove an element from the beginning of the array, use shift:

animals = ["dog", "cat", "bear", "horse", "eagle"]

animals.shift
=> "dog"

animals
=> ["cat", "bear", "horse", "eagle"]

When you do a shift operation, the element at the beginning of the array is removed and then returned to you so you can do something with it.

Modifying Specific Elements

You can use bracket notation to modify specific elements of an array at a certain index. For example, given the array of animals, you could replace the second element, "cat", with something else:

animals = ["dog", "cat", "bear", "horse", "eagle"]
animals[1] = "turtle"
animals
=> ["dog", "turtle", "bear", "horse", "eagle"]

Notice how the second element (whose index is 1) was replaced by "turtle."

Iterating Over Array

You can go through each element in the array using the each iterator. It is part of the Enumerable module. You can find many useful things there, so check it out. Anyway, here is an example:

animals = ["dog", "turtle", "bear", "horse", "eagle"]

animals.each { |animal| puts animal }

The above will go through each element in the array of animals and display its value (each on its own line). The each iterator accepts a block (denoted within braces) whose block parameter variable will take in each array element, one at a time, starting from the first one up to the last one, and then do something with it. In this case, I am using the puts statement to display each element's value.

Output:

dog
turtle
bear
horse
eagle

Other useful iterators are map, select, and reject. I invite you to look them up in the Ruby documentation. Now, let us see how to iterate over an array using a plain while loop:

animals = ["dog", "turtle", "bear", "horse", "eagle"]

index = 0

while index < animals.length
  puts animals[index]
  index += 1
end

The above uses the index variable to keep track of the location in the array. It starts off at 0 because the first element of the array is at position 0. Then, the loop condition is that the index is less than the number of elements in the array. Remember the last element is always the array size MINUS one. Inside the loop, you just display the value of the element at position index in the animals array. At the end of the loop, just before the end keyword, make sure to have the increment for index, so we do not end up with an infinite loop. The output of the above construct will be:

dog
turtle
bear
horse
eagle

Conclusion

Ruby makes it really nice and intuitive to work with arrays. You can think of them as stacks or queues, too. You can easily create, access, and modify its elements using Ruby's built-in methods. Furthermore, the Enumerable module has some interesting methods and iterators that allow you to extract certain pieces of information from Arrays. Don't forget to check that out as well! :) Thank you for reading and have fun! 

Looking for a reference text for Ruby? Get the Well-Grounded Rubyist.

Sunday, January 10, 2016

Ruby Basic String Methods

Need a reference text for the Ruby programming language? Get the Well-Grounded Rubyist.

This article will briefly go over Strings in Ruby.

First, let us talk about a few String methods. You can see all the methods available to a string if you call the "methods" method:

"Some String".methods

=> [:<=>, :==, :===, :eql?, :hash, :casecmp, :+, :*, :%, :[], :[]=, 
:insert, :length, :size, :bytesize, :empty?, :=~, :match, :succ, 
:succ!, :next, :next!, :upto, :index, :rindex, :replace, :clear, 
:chr, :getbyte, :setbyte, :byteslice, :scrub, :scrub!, :freeze, 
:to_i, :to_f, :to_s, :to_str, :inspect, :dump, :upcase, :downcase, 
:capitalize, :swapcase, :upcase!, :downcase!, :capitalize!, :swapcase!, 
:hex, :oct, :split, :lines, :bytes, :chars, :codepoints, :reverse, 
:reverse!, :concat, :<<, :prepend, :crypt, :intern, :to_sym, :ord, 
:include?, :start_with?, :end_with?, :scan, :ljust, :rjust, :center, 
(output omitted)
:public_send, :respond_to?, :extend, :display, :method, :public_method, 
:singleton_method, :define_singleton_method, :object_id, :to_enum, 
:enum_for, :equal?, :!, :!=, :instance_eval, :instance_exec, :__send__, 
:__id__]

There are many methods you could use, but here we will just talk about a few.

To start off, if you want to change the case of a string, you can either make it upper case or lower case with the following methods:

"Hello".upcase
"World".downcase

Output:

=> "HELLO"
=> "world"

There is a method that capitalizes the first character in the string and makes everything else lowercase:

"How ARe You dOIng toDAY?".capitalize

=> "How are you doing today?"

You can get rid of trailing spaces (either from the left or from the right) using the lstrip/rstrip method:

"   , And then ".lstrip

=> ", And then "

"   , And then ".rstrip

=> "   , And then"

Now, if you had those strings in a variable and you called all those methods, the original string would not change. That is, you would get a copy of the original string that was transformed according to the method you called. If you really want to change the original string, you would have to use the exclamation point, like this:

my_word = "Hello"
# Uppercases my_word permanently
my_word.upcase!
puts my_word

Output:

=> "HELLO"

Compare the use of no exclamation with one actually present:

sentence = "I climbed a tree."
another_sentence = sentence.upcase

puts "Original sentence: #{sentence}"
puts "Another sentence: #{another_sentence}"

sentence.upcase!
puts "Now sentence is: #{sentence}"

Output:

Original sentence: I climbed a tree.
Another sentence: I CLIMBED A TREE.
Now sentence is: I CLIMBED A TREE.

So in the code above we define a string variable and then create another string variable that takes the uppercase version of that original variable. Upon printing both of those variables, you see that the original is still unchanged while the second one has all its letters uppercase.

The code above uses string interpolation to display the value of a string variable. If you don't know about this, it is simple: within a double-quoted string, use #{} and place the variable name inside to actually display its value when you use puts. That is, puts "Something bla bla #{some_variable} will be displayed"

Now, moving on. The second part of the code calls the upcase method with a bang, !. Now, the actual variable will be modified. Whatever is stored in sentence will be turned into uppercase permanently. When you call puts to display the value of sentence, you see it is indeed a string with all characters uppercase.

Let us now talk about other more advanced methods. Before that, know that you can access any character in the string using standard array access notation:

my_string = "Somewhere over the rainbow"
# Displays the fourth character in the string (counts from 0)
puts my_string[3]

Output:

=> e

A useful method to search for a substring is the include? method.

"Welcome to my world".include? "world"
=> true

"Welcome to my world".include? "to"
=> true

"Welcome to my world".include? "earth"
=> false

So the method returns either true, if the sequence of characters was found in the string, or false, if the sequence of characters was not found.

The include? method can also take just a single character, if you use either "x", 'x', or ?x, where x is any character.

"Hello".include? 'e'
=> true

# Does it include the character e? (same as above)
"Hello".include? ?e
=> true
Now, another useful method is the sub method. You can substitute characters in a string with something else.

"I went to the gym today.".sub 'gym', 'theater'

Output (irb):

irb(main):023:0> "I went to the gym today.".sub 'gym', 'theater'
=> "I went to the theater today."

So the method sub substitutes a given string with a new string. Note that it does not change the original string, but makes a copy. If you want to actually change the original string (when working with variables), use the exclamation point:

sentence = "I ate pasta yesterday."
another_sentence = sentence.sub 'pasta', 'cake'

puts sentence
puts another_sentence

# Modify "sentence" variable permanently
sentence.sub! 'pasta', 'cake'
puts sentence

Output:

I ate pasta yesterday.
I ate cake yesterday.
I ate cake yesterday.

Note that the sub method substitutes only once. That is, the first match it finds will be the only one changed:

irb(main):002:0> sentence = "I love to eat a lot of pasta pasta much pasta"
=> "I love to eat a lot of pasta pasta much pasta"
irb(main):003:0> sentence
=> "I love to eat a lot of pasta pasta much pasta"
irb(main):004:0> sentence.sub 'pasta', 'pizza'
=> "I love to eat a lot of pizza pasta much pasta"
irb(main):005:0> sentence
=> "I love to eat a lot of pasta pasta much pasta"

That is all for this article. We talked about how you can modify strings using upcase, downcase, capitalize, as well as how to modify the original array using the exclamation (!) point. Then we looked at how to find matches in a string using include? and how to substitute matches with the sub method. There are many methods out there, so you could use the method "methods" to find out which methods are available to each class object.

Looking for a reference text for Ruby? Get the Well-Grounded Rubyist.