4TH GRADE SCIENCE • WAVES AND THEIR APPLICATIONS

Sending Secret Messages with Patterns

Discover how people use patterns of light, sound, and symbols to transfer information across distances — even without speaking a word.

The Phenomenon: Flashing Lights at Sea

ANCHORING PHENOMENON

But here's what's fascinating: different lighthouses use different flashing patterns. One lighthouse might blink twice quickly, while another blinks slowly three times. Sailors learn to read these patterns like a code. Without ever saying a single word, the lighthouse sends a message across miles of dark ocean using only light.

How can a simple light send a message? It's just light turning on and off — how does a pattern of flashes carry information that a sailor can understand?

A lighthouse on a rocky shore sends flashing light patterns across the ocean to a ship.

💭 Thinking Questions

  • What do you think makes the lighthouse's flashing pattern useful for sending information?
  • Why do you think different lighthouses use different patterns instead of all just staying on?
  • Can you think of other times people use patterns of light or sound to communicate a message?

What Scientists Know: Patterns Carry Information

Scientists and engineers have discovered something powerful: patterns can be used to encode and transfer information from one place to another. A pattern is something that repeats or follows a set of rules that someone can recognize. When we agree on what a pattern means, it becomes a way to send a message — even without words.

Think about a traffic light. It doesn't talk to you, but you understand its message because it uses a pattern of colors: red means stop, yellow means slow down, and green means go. Everyone who sees the light agrees on what each color means. That shared understanding is what makes the pattern work as a way to transfer information.

1

Information Can Travel Without Words

People don't always need to talk face-to-face to share information. We can use light signals, sound signals, and written codes to send messages over distances. The key is having a pattern that both the sender and receiver understand.
2

Patterns Must Follow Rules

A pattern only works for communication if it follows consistent rules. If a lighthouse flashed randomly with no repeating pattern, sailors couldn't decode its message. The pattern needs to be the same every time so the receiver can read it correctly.
3

Codes Turn Patterns into Messages

A code is a system that assigns meaning to patterns. Morse code, for example, uses short and long signals (dots and dashes) to stand for letters. The sender and receiver both know the code, so patterns become readable messages.
4

Different Senses Can Receive Patterns

Patterns for communication can be designed for different senses. Some use sight (flashing lights, colored flags). Others use hearing (drum beats, horn blasts). Some even use touch (Braille uses raised dots that you feel with your fingers).
KEY TAKEAWAY
KEY TAKEAWAY

Let's Investigate: Designing a Flashlight Code

INVESTIGATION SPOTLIGHT

What engineers do: Design solutions for transferring information

Engineers don't just study how things work — they design solutions to real problems. One important engineering practice is figuring out how to send a message from one place to another when people can't talk directly. In this investigation, you'll think like an engineer and design a pattern-based code using a flashlight.

The Challenge: You and a partner are in separate rooms. You each have a flashlight. You need to send a simple message — like a number between 1 and 5 — using only the flashlight. You cannot talk, write, or use any other tool.

Materials you would need:

  • 🔦 Two flashlights (one per person)
  • 📋 Paper and pencil to design your code
  • 👤 A partner in a different part of the room

What you would observe: When both partners agree on the same pattern code beforehand, messages are received correctly. When they use different codes or no code at all, messages get mixed up. The investigation shows that a shared, consistent pattern is essential for transferring information.

Diagram showing a flashlight code where different numbers of flashes represent different numbers: 1 flash equals 1, 2 flashes equals 2, and so on up to 5.

In this investigation, you are practicing the Science and Engineering Practice of constructing designed solutions. Engineers look at a problem — "How can I send information across a distance?" — and then design a pattern-based system to solve it. They test it, find problems, and improve the design. This is exactly what real engineers do when they create technologies like traffic lights, fire alarms, and even Wi-Fi signals.

What We Discovered: How Pattern-Based Codes Work

When scientists and engineers study pattern-based information transfer, they find that every successful system has three essential parts: a sender, a signal (the pattern), and a receiver. The sender creates the pattern, the signal travels through space (as light, sound, or another form of energy), and the receiver detects and decodes the pattern.

Let's look at data from a real investigation. Imagine a class of 4th graders tested three different flashlight codes to send the numbers 1 through 5. They recorded how many messages were received correctly out of 10 tries for each code system.

CODE SYSTEMDESCRIPTIONCORRECT OUT OF 10RESULT
Code A: Counting FlashesNumber of flashes = the number (e.g., 3 flashes = 3)9 / 10Very reliable
Code B: Short and LongShort flash = 1, long flash = 5 (combinations for 2, 3, 4)7 / 10Somewhat reliable
Code C: Random FlashesNo agreed-upon pattern — sender just flashed "however it felt right"2 / 10Unreliable

The data clearly shows a pattern in itself: the simpler and more consistent the code, the more accurately the message was received. Code A worked best because it used a very simple, clear rule — each flash means one number. Code B was harder because the receiver had to tell the difference between short and long flashes, which sometimes got confusing. Code C barely worked at all because there was no shared pattern.

This tells us something important about how information transfers work. The code doesn't need to be fancy — it needs to be clear, consistent, and agreed upon by both the sender and the receiver. When a pattern follows strict rules, the receiver can decode it. When a pattern is unclear or changes without warning, the message gets lost.

Flowchart showing the 4 steps of pattern-based information transfer.

This is why Morse code was so successful for over 150 years. The system was standardized — everyone around the world learned the same code. A dot-dash-dot always meant the letter "R," whether you were in America, Europe, or on a ship in the middle of the Pacific Ocean. The pattern was universal, clear, and consistent.

Patterns and Connections: Seeing Patterns Everywhere

The crosscutting concept in this lesson is Patterns. Scientists look for patterns because patterns help us understand, explain, and predict the world around us. In this lesson, we've seen that patterns can also be used to transfer information. But patterns that carry meaning show up all across science — not just in communication.

Let's look at how the idea of "patterns carry information" appears in different areas of science:

AREA OF SCIENCEEXAMPLE OF PATTERNINFORMATION IT CARRIES
Physical Science (Light)A lighthouse flashes in a specific repeating sequenceTells sailors which lighthouse they're seeing and where they are
Physical Science (Sound)A fire alarm beeps in a specific pattern (3 beeps, pause, repeat)Tells people there is a fire emergency and they need to evacuate
Life ScienceFireflies flash their light in specific patternsEach species has its own flash pattern to attract the right mate
Earth ScienceA seismograph records waves in patterns of peaks and valleysTells scientists how strong an earthquake was and where it started
TechnologyA barcode uses patterns of thick and thin black linesStores product information that a scanner can read instantly

Notice the pattern within the patterns: in every example, a repeating or structured arrangement of signals carries specific information. The details change — sometimes it's light, sometimes sound, sometimes lines on a label — but the underlying idea is the same. A pattern that both the sender and receiver understand can transfer information reliably. Scientists look for this kind of crosscutting connection because it reveals deep principles that work across many different situations.

KEY TAKEAWAY
KEY TAKEAWAY

Real-World Connections: Engineering Pattern-Based Solutions

Engineers design pattern-based communication systems to solve real problems all around us. Let's look at some examples of how people use patterns to transfer important information every single day.

1

Traffic Signals

Traffic lights use a pattern of colors — red, yellow, green — to communicate instructions to drivers. The pattern is the same at every intersection, so every driver knows what to do without needing a written sign.
2

Braille

Braille uses patterns of raised bumps arranged in a 2×3 grid that people can feel with their fingertips. Different arrangements of dots represent different letters, allowing people who are blind to read through touch.
3

Binary Code & Computers

Every text message, photo, and video you see on a phone is stored as patterns of 1s and 0s called binary code. Computers read these patterns of "on" and "off" signals to display everything on your screen.
4

Ambulance Sirens

Emergency vehicles use specific sound patterns — the wailing, yelping, or hi-lo siren — to communicate different levels of urgency to drivers on the road, telling them to move aside.

Engineering Design Challenge

Now imagine you are an engineer who needs to solve this problem: Your school needs a way to communicate different messages during an outdoor field day, but it's too noisy for anyone to hear announcements. You need to design a pattern-based system using only colored flags.

Think through the engineering design process:

1
1. Define the ProblemStudents on a large field need to know when to start, stop, rotate to a new station, and come in for water.
2
2. Brainstorm SolutionsYou could wave a green flag to mean "go," a red flag to mean "stop," a yellow flag to mean "switch stations," and a blue flag to mean "water break." Waving the flag in circles could mean "hurry."
3
3. Compare SolutionsIs 4 flag colors enough? What if someone is colorblind and can't tell red from green? Maybe you should also add a pattern of movement — waving once for go, twice for stop — as a backup signal.
4
4. Test and ImproveTry the system with a few people first. Did they understand the signals? Were any signals confusing? Redesign any signals that caused mistakes.

This is how engineers think about every communication system — they identify the problem, design a pattern-based solution, test it with real users, and improve it based on what they learn. The best solutions are simple, clear, and easy for everyone to understand.

Key Vocabulary Review

Key Vocabulary
TERMDEFINITION
PatternSomething that repeats or follows a set of rules. Patterns can be found in shapes, sounds, lights, numbers, or events that happen in a regular way.
InformationA message, fact, or set of data that can be shared between people or devices. Information can travel as light, sound, or symbols.
CodeA system of rules that assigns meaning to patterns. For example, Morse code assigns dot-and-dash patterns to each letter of the alphabet.
SignalA sound, light, gesture, or other action that carries a message from a sender to a receiver. A flashing light and a ringing bell are both types of signals.
EncodeTo put a message into a pattern or code so it can be sent as a signal. When you flash a flashlight in a pattern, you are encoding a message.
DecodeTo figure out the message that a pattern or code represents. When you see the flashes and figure out the number, you are decoding the message.
TransferTo move something from one place to another. When information travels from a sender to a receiver, we say the information has been transferred.
Binary CodeA system that uses only two symbols (usually 1 and 0, or "on" and "off") to represent all kinds of information. Computers use binary code.

Practice: Test Your Understanding

1
A group of hikers wants to send simple messages to each other across a wide canyon. They decide to use a mirror to reflect sunlight. They create a pattern: one short flash means "yes" and two short flashes mean "no." What makes this system work for transferring information?
2
A teacher creates a system for her classroom using colored cards. She holds up a green card to mean "move to the next activity," a yellow card to mean "you have one minute left," and a red card to mean "stop and listen." Which part of this system is the pattern used to encode information?
3
Two friends live on opposite sides of a street. At night, they use flashlights to send coded messages. They design this code: three quick blinks = "come outside," one long shine = "goodnight," and two quick blinks = "call me." One night, one friend sees three quick blinks but thinks it means "call me." What went wrong?
4
Students are designing a device to send secret messages between two classrooms using a long string and beads. They slide different numbers of beads along the string to represent different letters. Which design improvement would allow them to send messages that include more letters of the alphabet?
5
A ship captain needs to send an urgent message to a nearby lighthouse using only a large drum. The captain designs a code: one beat means "A," two beats means "B," three beats means "C," and so on. The captain quickly realizes this code has a serious problem. What is the most likely problem with this design?

What's Next?

WHAT'S NEXT?
Varsity Tutors • 4th Grade Science (NGSS) • Sending Secret Messages with Patterns